Building Information Modeling (BIM) y análisis de ciclo de vida (ACV): meta análisis y estudio de caso en empresas constructoras de Bogotá
| dc.contributor.advisor | Romero Larrahondo, Paulo Andrés | |
| dc.contributor.author | Mantilla Jaimes, Daniela | |
| dc.coverage.city | Bogotá | |
| dc.coverage.country | Colombia | |
| dc.date.accessioned | 2026-02-10T20:34:34Z | |
| dc.date.available | 2026-02-10T20:34:34Z | |
| dc.date.issued | 2025 | |
| dc.description.abstract | A partir de una Revisión Sistemática de Literatura (RSL) y un estudio de caso realizado en cuatro empresas constructoras de Bogotá, esta investigación analizó la integración entre Building Information Modeling (BIM) y el Análisis de Ciclo de Vida (ACV) en el sector de la construcción. La investigación buscó la articulación de hallazgos académicos y prácticas locales, considerando relaciones, patrones y limitaciones para apoyar una toma de decisiones más sostenible, informada y estandarizada. La RSL incluyó un meta-análisis de variables extraídas manualmente de la literatura y representadas gráficamente a través de R. El estudio de caso se desarrolló a través de entrevistas semiestructuradas, procesadas y codificadas con NotebookLM Pro como herramienta de inteligencia artificial (IA), y complementadas con gráficas en R para representar tendencias y frecuencias. Los resultados muestran que, a nivel global, la integración BIM-ACV presenta heterogeneidad, imprecisión en la definición de variables, desconocimiento conceptual en algunas de ellas y limitada comparabilidad entre resultados. En el ámbito local, se observa un nivel de madurez intermedio de BIM, escaso conocimiento del ACV, falta de estandarización, limitada capacitación y resistencia al cambio. La evidencia permite organizar sistemáticamente las variables identificadas para futuros marcos generales de estandarización, ofrecer un punto de referencia cuantitativo para investigaciones futuras y comprender los retos y oportunidades asociados al nivel de madurez actual de BIM en la industria local, proporcionando una base sólida hacia una construcción más sostenible. (Texto tomado de la fuente) | spa |
| dc.description.abstract | This study examined the integration of Building Information Modeling (BIM) and Life Cycle Assessment (LCA) in the construction industry through a Systematic Literature Review (SLR), with a meta-analysis approach and a multiple-case study conducted in four construction organizations in Bogotá. The research was designed to articulate academic evidence with local practices, identifying relationships, patterns, and constraints that explain the maturity level of BIM-LCA implementation. The SLR involved a manual extraction of variables from literature, which were subsequently subjected to graphical analysis via R. Semi-structured interviews were systematically coded using NotebookLM Pro as an artificial intelligence (AI)-based analytical tool, including visualizations to capture frequencies and current trends. Findings reveal that BIM-LCA integrations remain characterized by methodological heterogeneity, inconsistent variable definitions, and limited cross-study comparability. At the local scale, results indicate an intermediate stage of BIM maturity, deficient familiarity with LCA, insufficient standardization, lack of training, and organizational resistance to change. The combined evidence contributes to the systematic consolidation for future standardization frameworks, establishes a quantitative benchmark for new studies, and illustrates both challenges and opportunities associated with the status of BIM in the Colombian construction industry, facilitating the foundation for sustainable decision-making processes. | eng |
| dc.description.degreelevel | Maestría | |
| dc.description.degreename | Magíster en Construcción | |
| dc.description.notes | Tesis de Investigación Meritoria | spa |
| dc.description.researcharea | BIM - Sostenibilidad | |
| dc.description.technicalinfo | R, Notebook LM Pro | |
| dc.format.extent | xx, 348 páginas | |
| dc.format.mimetype | application/pdf | |
| dc.identifier.instname | Universidad Nacional de Colombia | spa |
| dc.identifier.reponame | Repositorio Institucional Universidad Nacional de Colombia | spa |
| dc.identifier.repourl | https://repositorio.unal.edu.co/ | spa |
| dc.identifier.uri | https://repositorio.unal.edu.co/handle/unal/89473 | |
| dc.language.iso | spa | |
| dc.publisher | Universidad Nacional de Colombia | |
| dc.publisher.branch | Universidad Nacional de Colombia - Sede Bogotá | |
| dc.publisher.faculty | Facultad de Artes | |
| dc.publisher.place | Bogotá, Colombia | |
| dc.publisher.program | Bogotá - Artes - Maestría en Construcción | |
| dc.relation.references | Abanda, F. H., Oti, A. H., & Tah, J. H. M. (2017). Integrating BIM and new rules of measurement for embodied energy and CO 2 assessment. Journal of Building Engineering, 12, 288-305. https://doi.org/10.1016/j.jobe.2017.06.017 | |
| dc.relation.references | Abbasi, S., & Noorzai, E. (2021). The BIM-Based multi-optimization approach in order to determine the trade-off between embodied and operation energy focused on renewable energy use. Journal of Cleaner Production, 281, 125359. https://doi.org/10.1016/j.jclepro.2020.125359 | |
| dc.relation.references | Abd Rashid, A. F., & Yusoff, S. (2015). A review of life cycle assessment method for building industry. Renewable and Sustainable Energy Reviews, 45, 244-248. https://doi.org/10.1016/j.rser.2015.01.043 | |
| dc.relation.references | Abdelaal, F., & Guo, B. H. W. (2022). Stakeholders’ perspectives on BIM and LCA for green buildings. Journal of Building Engineering, 48, 103931. https://doi.org/10.1016/j.jobe.2021.103931 | |
| dc.relation.references | Abdelaal, M. A., Seif, S. M., El-Tafesh, M. M., Bahnas, N., Elserafy, M. M., & Bakhoum, E. S. (2023). Sustainable assessment of concrete structures using BIM–LCA–AHP integrated approach. Environment, Development and Sustainability, 26(10), 25669-25688. https://doi.org/10.1007/s10668-023-03701-3 | |
| dc.relation.references | Abdulrasool, S. A., & Raoof Mahjoob, A. M. (2020). Using BIM for Optimizing the Upgrading Cost to Convert the Traditional Buildings to Sustainable Buildings in Iraq. IOP Conference Series: Materials Science and Engineering, 901, 012024. https://doi.org/10.1088/1757-899X/901/1/012024 | |
| dc.relation.references | Abouhamad, M., & Abu-Hamad, M. (2021). Life Cycle Assessment Framework for Embodied Environmental Impacts of Building Construction Systems. Sustainability, 13(2), 461. https://doi.org/10.3390/su13020461 | |
| dc.relation.references | AbouHamad, M., & Abu-Hamd, M. (2019). Framework for construction system selection based on life cycle cost and sustainability assessment. Journal https://doi.org/10.1016/j.jclepro.2019.118397 | |
| dc.relation.references | Abualdenien, J., & Borrmann, A. (2019). A meta-model approach for formal specification and consistent management of multi-LOD building models. https://doi.org/10.1016/j.aei.2019.04.003 | |
| dc.relation.references | Acampa, G., García, J. O., Grasso, M., & Díaz-López, C. (2019). Project Sustainability: Criteria to be introduced in BIM. 23, 11. | |
| dc.relation.references | Agustí-Juan, I., Hollberg, A., & Habert, G. (2019). Early-design integration of environmental criteria for digital fabrication. 6. | |
| dc.relation.references | Ahmad, T., & Thaheem, M. (2022). LCIA Parameters and the Role of BIM towards Sustainability: Regional and Temporal Trends. Buildings, 12(5), 700. https://doi.org/10.3390/buildings12050700 | |
| dc.relation.references | Ahmadian, A., Rashidi, T. H., Akbarnezhad, A., & Waller, S. T. (2017). BIM-enabled sustainability assessment of material supply decisions. Engineering, Construction and Architectural Management, 24(4), 668-695. https://doi.org/10.1108/ECAM-12-2015-0193 | |
| dc.relation.references | Ahmed, N., Abdel-Hamid, M., Abd El-Razik, M. M., & El-Dash, K. M. (2020). Impact of sustainable design in the construction sector on climate change. Ain Shams Engineering Journal, S2090447920302446. https://doi.org/10.1016/j.asej.2020.11.002 | |
| dc.relation.references | Ajayi, S. O., Oyedele, L. O., Ceranic, B., Gallanagh, M., & Kadiri, K. O. (2015). Life cycle environmental performance of material specification: A BIM-enhanced comparative assessment. International Journal of Sustainable Building Technology and Urban Development, 6(1), 14-24. https://doi.org/10.1080/2093761X.2015.1006708 | |
| dc.relation.references | Ajayi, S. O., Oyedele, L. O., & Ilori, O. M. (2019). Changing significance of embodied energy: A comparative study of material specifications and building energy sources. Journal of Building Engineering, 23, 324-333. https://doi.org/10.1016/j.jobe.2019.02.008 | |
| dc.relation.references | Ajtayné Károlyfi, K., & Szép, J. (2023). A Parametric BIM Framework to Conceptual Structural Design for Assessing the Embodied Environmental Impact. Sustainability, 15(15), 11990. https://doi.org/10.3390/su151511990 | |
| dc.relation.references | Akbari, S., Sheikhkhoshkar, M., Pour Rahimian, F., El Haouzi, H. B., Najafi, M., & Talebi, S. (2024). Sustainability and building information modelling: Integration, research gaps, and future directions. Automation in Construction, 163, 105420. https://doi.org/10.1016/j.autcon.2024.105420 | |
| dc.relation.references | Akbarieh, A., Jayasinghe, L. B., Waldmann, D., & Teferle, F. N. (2020). BIM-Based End-of-Lifecycle Decision Making and Digital Deconstruction: Literature Review. Sustainability, 12(7), 2670. https://doi.org/10.3390/su12072670 | |
| dc.relation.references | Akinade, O. O., Oyedele, L. O., Ajayi, S. O., Bilal, M., Alaka, H. A., Owolabi, H. A., & Arawomo, O. O. (2018). Designing out construction waste using BIM technology: Stakeholders’ expectations for industry deployment. Journal of Cleaner Production, 180, 375-385. https://doi.org/10.1016/j.jclepro.2018.01.022 | |
| dc.relation.references | Al Mahmud, J., Arefin, S., & Ahmmed, M. I. (2024). Uncovering the research tapestry: Bibliometric insights into BIM and LCA – exploring trends, collaborations and future directions. Construction Innovation. https://doi.org/10.1108/CI-10-2023-0267 | |
| dc.relation.references | Alasmari, E., Martinez-Vazquez, P., & Baniotopoulos, C. (2024). Utilising BIM on LCC to Enhance the Sustainability of Saudi Residential Projects Through Simulation. A Case Study at the Kingdom of Saudi Arabia. En V. Ungureanu, L. Bragança, C. Baniotopoulos, & K. M. Abdalla (Eds.), 4th International Conference «Coordinating Engineering for Sustainability and Resilience» & Midterm Conference of CircularB “Implementation of Circular Economy in the Built Environment” (Vol. 489, pp. 659-668). Springer Nature Switzerland. https://doi.org/10.1007/978-3-031-57800-7_61 | |
| dc.relation.references | Alecrim, I., Carvalho, J. P., Bragança, L., & Mateus, R. (2020). Using BIM for Assessing Buildings Life Cycle Impacts. IOP Conference Series: Earth and Environmental Science, 503, 012005. https://doi.org/10.1088/1755 1315/503/1/012005 | |
| dc.relation.references | Al-Ghamdi, S. G., & Bilec, M. M. (2014). Green Building Rating Systems and Environmental Impacts of Energy Consumption from an International https://doi.org/10.1061/9780784478745.058 | |
| dc.relation.references | Al-Ghamdi, S. G., & Bilec, M. M. (2015). Life-Cycle Thinking and the LEED Rating System: Global Perspective on Building Energy Use and Environmental Impacts. Environmental Science & Technology, 49(7), 4048-4056. https://doi.org/10.1021/es505938u | |
| dc.relation.references | Al-Ghamdi, S. G., & Bilec, M. M. (2017). Green Building Rating Systems and Whole-Building Life Cycle Assessment: Comparative Study of the Existing Assessment Tools. Journal of Architectural Engineering, 23(1), 04016015. https://doi.org/10.1061/(ASCE)AE.1943-5568.0000222 | |
| dc.relation.references | Ali, A. A. M. (2020). AN INTEGRATED ANALYSIS WITH LIFE CYCLE ASSESSMENT, BUILDING INFORMATION MODELING, AND ENVIRONMENTAL PERFORMANCE FOR WINDOW MATERIALS: ASSIUT UNIVERSITY HOSPITAL CLINIC AS A CASE STUDY. JES. Journal of Engineering Sciences, 0(0), 0-0. https://doi.org/10.21608/jesaun.2020.42055.1009 | |
| dc.relation.references | Alirezaei, M., Noori, M., Tatari, O., Mackie, K. R., & Elgamal, A. (2016). BIM-based Damage Estimation of Buildings under Earthquake Loading Condition. https://doi.org/10.1016/j.proeng.2016.04.136 | |
| dc.relation.references | Almeida, R., Chaves, L., Silva, M., Carvalho, M., & Caldas, L. (2023). Integration between BIM and EPDs: Evaluation of the main difficulties and proposal of a framework based on ISO 19650:2018. Journal of Building Engineering, 68, 106091. https://doi.org/10.1016/j.jobe.2023.106091 | |
| dc.relation.references | Alotaibi, B. S., Khan, S. A., Abuhussain, M. A., Al-Tamimi, N., Elnaklah, R., & Kamal, M. A. (2022). Life Cycle Assessment of Embodied Carbon and Strategies for Decarbonization of a High-Rise Residential Building. Buildings, 12(8), 1203. https://doi.org/10.3390/buildings12081203 | |
| dc.relation.references | Alruqi, W. M., Hallowell, M. R., & Techera, U. (2018). Safety climate dimensions and their relationship to construction safety performance: A meta-analytic https://doi.org/10.1016/j.ssci.2018.05.019 | |
| dc.relation.references | Alsaied, H. M. H., Madawy, A. E. T. E., & Sayyad, N. A. E. H. E. (2024). Life Cycle Impact Assessment Methodology for Building Envelope Retrofits Using Photovoltaic Systems in Egypt. Civil Engineering and Architecture, 12(2), 850-865. https://doi.org/10.13189/cea.2024.120214 | |
| dc.relation.references | Álvarez, L., & Díaz, J. (2014). Integration of Life Cycle Assessment in a BIM Environment. Procedia Engineering, 85, 26-32. https://doi.org/10.1016/j.proeng.2014.10.525 | |
| dc.relation.references | Alvear, A., Campos, J. P., Ciancio, J., Dalaison, W., Angelis, G. D., Escovar, M. A., Madrid, H., Narváez, R., Pedrasa, F., García, R. P., Suarez, G., & Zambrano, A. (2023). Resilience and Sustainability in Building Codes in Latin America and the Caribbean. Inter-American Development Bank. | |
| dc.relation.references | Alwan, Z., & Jones, P. (2014). The importance of embodied energy in carbon footprint assessment. Structural Survey, 32(1), 49-60. https://doi.org/10.1108/SS-01-2013-0012 | |
| dc.relation.references | Alwan, Z., Nawarathna, A., Ayman, R., Zhu, M., & ElGhazi, Y. (2021). Framework for parametric assessment of operational and embodied energy impacts utilising BIM. Journal of Building Engineering, 42, 102768. https://doi.org/10.1016/j.jobe.2021.102768 | |
| dc.relation.references | Anand, C. K., & Amor, B. (2017). Recent developments, future challenges and new research directions in LCA of buildings: critical review. Renewable and Sustainable Energy Reviews, 67, 408-416. https://doi.org/10.1016/j.rser.2016.09.058 | |
| dc.relation.references | Angeles, K., Patsialis, D., Taflanidis, A. A., Kijewski-Correa, T. L., Buccellato, A., & Vardeman, C. (2021). Advancing the Design of Resilient and Sustainable Buildings: An Integrated Life-Cycle Analysis. Journal of Structural Engineering, 147(3), 04020341. https://doi.org/10.1061/(ASCE)ST.1943-541X.0002910 | |
| dc.relation.references | Ansah, M. K., Chen, X., Yang, H., Lu, L., & Lam, P. T. I. (2019). A review and outlook for integrated BIM application in green building assessment. https://doi.org/10.1016/j.scs.2019.101576 | |
| dc.relation.references | Ansah, M. K., Chen, X., Yang, H., Lu, L., & Lam, P. T. I. (2020). An integrated life cycle assessment of different façade systems for a typical residential building in Ghana. Sustainable Cities and Society, 53, 101974. https://doi.org/10.1016/j.scs.2019.101974 | |
| dc.relation.references | Ansah, M. K., Chen, X., Yang, H., Lu, L., & Lam, P. T. I. (2021). Developing an automated BIM-based life cycle assessment approach for modularly designed high-rise buildings. Environmental Impact Assessment Review, 90, 106618. https://doi.org/10.1016/j.eiar.2021.106618 | |
| dc.relation.references | Ansah, M. K., Chen, X., Yang, H., Lu, L., & Li, H. (2021). Developing a tier-hybrid uncertainty analysis approach for lifecycle impact assessment of a typical high-rise residential building. Resources, Conservation and Recycling, 167, 105424. https://doi.org/10.1016/j.resconrec.2021.105424 | |
| dc.relation.references | Ansah, N. B., Adinyira, E., Agyekum, K., & Aidoo, I. (2023). Optimising the material emissions of single-dwelling residential buildings using the dynamic life cycle iteration protocols. Scientific African, 21, e01803. https://doi.org/10.1016/j.sciaf.2023.e01803 | |
| dc.relation.references | Aragón, A., & Alberti, M. G. (2024). Limitations of machine-interpretability of digital EPDs used for a BIM-based sustainability assessment of construction assets. Journal of Building Engineering, 96, 110418. https://doi.org/10.1016/j.jobe.2024.110418 | |
| dc.relation.references | Aranda‐Mena, G., Crawford, J., Chevez, A., & Froese, T. (2009). Building information modelling demystified: Does it make business sense to adopt BIM? International Journal of Managing Projects in Business, 2(3), 419-434. https://doi.org/10.1108/17538370910971063 | |
| dc.relation.references | Arvizu-Piña, V. A., Armendáriz López, J. F., García González, A. A., & Barrera Alarcón, I. G. (2023). An open access online tool for LCA in building’s early design stage in the Latin American context. A screening LCA case study for a bioclimatic building. Energy and Buildings, 295, 113269. https://doi.org/10.1016/j.enbuild.2023.113269 | |
| dc.relation.references | Arvizu-Piña, V. A., Gonzalez, A. A. G., Lopez, J. F. A., Santos, C. G., Guzman, M. A. C., & Amador, J. P. C. (2022). Use of the EVAMED tool to assess the carbon footprint of a building with a life cycle approach in the Latin American context. 2022 7th International Conference on Smart and Sustainable Technologies (SpliTech), 1-7. https://doi.org/10.23919/SpliTech55088.2022.9854336 | |
| dc.relation.references | Asare, K. A. B., Ruikar, K. D., Zanni, M., & Soetanto, R. (2020). BIM-based LCA and energy analysis for optimised sustainable building design in Ghana. SN Applied Sciences, 2(11), 1855. https://doi.org/10.1007/s42452-020 03682-2 | |
| dc.relation.references | Asgari, S., Haghir, S., & Noorzai, E. (2023). Reducing energy consumption in operation and demolition phases by integrating multi-objective optimization with LCA and BIM. Energy Efficiency, 16(6), 54. https://doi.org/10.1007/s12053-023-10129-1 | |
| dc.relation.references | Asgari, S., & Noorzai, E. (2023). Improving the effectiveness and interaction between building information modeling and life cycle assessment. Architectural Engineering and Design Management, 19(1), 22-38. https://doi.org/10.1080/17452007.2021.1889956 | |
| dc.relation.references | Atashbar, H., & Noorzai, E. (2023). Optimization of Exterior Wall Cladding Materials for Residential Buildings Using the Non-Dominated Sorting Genetic Algorithm II (NSGAII) Based on the Integration of Building Information Modeling (BIM) and Life Cycle Assessment (LCA) for Energy Consumption: A Case Study. Sustainability, 15(21), 15647. https://doi.org/10.3390/su152115647 | |
| dc.relation.references | Atik, S., Aparisi, T. D., & Raslan, R. (2021). Investigating the effectiveness and robustness of performing the BIM-based cradle-to-cradle LCA at early-design stages: A case study in the UK. 8. | |
| dc.relation.references | Atik, S., Aparisi, T. D., & Raslan, R. (2023). The Opportunities and Challenges of Using LCA-Based BIM Plugins in Early-Stage Building Design: An Industry Expert Perspective. En M. Casini (Ed.), Proceedings of the 2nd International Civil Engineering and Architecture Conference (Vol. 279, pp. 401-408). Springer Nature Singapore. https://doi.org/10.1007/978-981-19-4293-8_42 | |
| dc.relation.references | Atik, Ş., Aparisi, T. D., & Raslan, R. (2024). Mind the gap: Facilitating early design stage building life cycle assessment through a co-production approach. https://doi.org/10.1016/j.jclepro.2024.142803 | |
| dc.relation.references | Atta, I., Bakhoum, E. S., & Marzouk, M. M. (2021). Digitizing material passport for sustainable construction projects using BIM. Journal of Building Engineering, 43, 103233. https://doi.org/10.1016/j.jobe.2021.103233 | |
| dc.relation.references | Ayman Mohamed, R., Alwan, Z., Salem, M., & McIntyre, L. (2023). Automation of embodied carbon calculation in digital built environment- tool utilizing UK LCI database. Energy and Buildings, 298, 113528. https://doi.org/10.1016/j.enbuild.2023.113528 | |
| dc.relation.references | Ayres, R. U. (1995). Life cycle analysis: A critique. 25. | |
| dc.relation.references | Azhar, S. (2011). Building Information Modeling (BIM): Trends, Benefits, Risks, and Challenges for the AEC Industry. Leadership and Management in Engineering, 11(3), 241-252. https://doi.org/10.1061/(ASCE)LM.1943 5630.0000127 | |
| dc.relation.references | Azhar, S., Khalfan, M., & Maqsood, T. (2012). Building Information Modeling (BIM): Now and Beyond. Australasian Journal of Construction Economics and Building, 14. | |
| dc.relation.references | Azizoglu, B., & Seyis, S. (Eds.). (2020). Analyzing the Benefits and Challenges of Building Information Modelling and Life Cycle Assessment Integration. En Advances in Building Information Modeling: First Eurasian BIM Forum, EBF 2019, Istanbul, Turkey, May 31, 2019, Revised Selected Papers (Vol. 1188). Springer International Publishing. https://doi.org/10.1007/978-3-030-42852-5 | |
| dc.relation.references | Baarimah, A. O., Alaloul, W. S., Liew, M. S., Al-Aidrous, A.-H. M. H., Alawag, A. M., & Musarat, M. A. (2021). Integration of Building Information Modeling (BIM) and Value Engineering in Construction Projects: A Bibliometric Analysis. 2021 Third International Sustainability and Resilience Conference: Climate Change, 362-367. https://doi.org/10.1109/IEEECONF53624.2021.9668045 | |
| dc.relation.references | Baduge, S. K., Thilakarathna, S., Perera, J. S., Arashpour, M., Sharafi, P., Teodosio, B., Shringi, A., & Mendis, P. (2022). Artificial intelligence and smart vision for building and construction 4.0: Machine and deep learning methods and applications. Automation in Construction, 141, 104440. https://doi.org/10.1016/j.autcon.2022.104440 | |
| dc.relation.references | Baek, C., Tae, S., Kim, R., & Shin, S. (2016). Life Cycle CO2 Assessment by Block Type Changes of Apartment Housing. Sustainability, 8(8), 752. https://doi.org/10.3390/su8080752 | |
| dc.relation.references | Balouktsi, M., Lützkendorf, T., Röck, M., Passer, A., Reisinger, T., & Frischknecht, R. (2020). Survey results on acceptance and use of Life Cycle Assessment among designers in world regions: IEA EBC Annex 72. IOP Conference Series: Earth and Environmental Science, 588, 032023. https://doi.org/10.1088/1755 1315/588/3/032023 | |
| dc.relation.references | Barbini, A., Malacarne, G., Massari, G. A., Marcher, C., & Matt, D. T. (2022). Environmental performances evaluation through building information models. https://doi.org/10.14311/APP.2022.38.0018 | |
| dc.relation.references | Barbini, A., Malacarne, G., Romagnoli, K., Massari, G. A., & Matt, D. T. (2020). Integration of Life Cycle Data in a BIM Object Library to Support Green and Digital Public Procurements. International Journal of Sustainable Development and Planning, 15(7), 983-990. https://doi.org/10.18280/ijsdp.150702 | |
| dc.relation.references | Bare, J. C., Hofstetter, P., Pennington, D. W., & de Haes, H. A. U. (2000). Midpoints versus endpoints: The sacrifices and benefits. The International https://doi.org/10.1007/BF02978665 Journal of Life Cycle Assessment, 5(6), 319-326. | |
| dc.relation.references | Barlish, K., & Sullivan, K. (2012). How to measure the benefits of BIM — A case study approach. Automation in Construction, 24, 149-159. https://doi.org/10.1016/j.autcon.2012.02.008 | |
| dc.relation.references | Bartels, N., Pleuser, J., & Schroeder, T. (2023, julio 7). Life cycle-oriented decision making based on data-driven building models. 40th International Symposium on Automation and Robotics in Construction, Chennai, India. https://doi.org/10.22260/ISARC2023/0099 | |
| dc.relation.references | Basbagill, J., Flager, F., Lepech, M., & Fischer, M. (2013). Application of life-cycle assessment to early stage building design for reduced embodied environmental impacts. Building and Environment, 60, 81-92. https://doi.org/10.1016/j.buildenv.2012.11.009 | |
| dc.relation.references | Baumann, H. (1994). A comparison of three methods for impact analysis and evaluation. Life Cycle Assessment, 8. | |
| dc.relation.references | Bedrick, J., & Builders, W. (2008). Organizing the Development of a Building Information Model. AECbytes. | |
| dc.relation.references | Benachio, G. L. F., Freitas, M. do C. D., & Tavares, S. F. (2020). Circular economy in the construction industry: A systematic literature review. Journal https://doi.org/10.1016/j.jclepro.2020.121046 | |
| dc.relation.references | Berges-Alvarez, I., Muñoz Sanguinetti, C., Giraldi, S., & Marín-Restrepo, L. (2022). Environmental and economic criteria in early phases of building design through Building Information Modeling: A workflow exploration in developing countries. Building and Environment, 226, 109718. https://doi.org/10.1016/j.buildenv.2022.109718 | |
| dc.relation.references | Bertin, I., Lebrun, F., Braham, N., & Le Roy, R. (2019). Construction, deconstruction, reuse of the structural elements: The circular economy to reach zero carbon. IOP Conference Series: Earth and Environmental Science, 323, 012020. https://doi.org/10.1088/1755-1315/323/1/012020 | |
| dc.relation.references | Bertin, I., Mesnil, R., Jaeger, J.-M., Feraille, A., & Le Roy, R. (2020). A BIM-Based Framework and Databank for Reusing Load-Bearing Structural Elements. Sustainability, 12(8), 3147. https://doi.org/10.3390/su12083147 | |
| dc.relation.references | Bianchi, P. F., Yepes, V., Vitorio, P. C., & Kripka, M. (2021). Study of Alternatives for the Design of Sustainable Low Income Housing in Brazil. Sustainability, 13(9), 4757. https://doi.org/10.3390/su13094757 | |
| dc.relation.references | BIMForum. (2019). Level of Development (LOD) Specification. https://bimforum.org/lod/ | |
| dc.relation.references | Bischof, J., & Duffy, A. (2022). Life-cycle assessment of non-domestic building stocks: A meta-analysis of current modelling methods. Renewable https://doi.org/10.1016/j.rser.2021.111743 and Sustainable Energy Reviews, 153, 111743. | |
| dc.relation.references | Boje, C., Hahn Menacho, Á. J., Marvuglia, A., Benetto, E., Kubicki, S., Schaubroeck, T., & Navarrete Gutiérrez, T. (2023). A framework using BIM and digital twins in facilitating LCSA for buildings. Journal of Building Engineering, 76, 107232. https://doi.org/10.1016/j.jobe.2023.107232 | |
| dc.relation.references | Boje, C., Navarrete, T., Kubicki, S., & Beach, T. (2023). Linked data for the life cycle assessment of built assets. | |
| dc.relation.references | Booth, A., Sutton, A., & Papaioannou, D. (2016). Systematic approaches to a successful literature review (Second edition). Sage. | |
| dc.relation.references | Bottari, A., Ioudioux, G., Mancini, M., & Travaglini, A. (2016). Guidelines for Building Information Modeling (BIM) performance improvement in the EPC industry. 2016 IEEE International Conference on Industrial Engineering and Engineering Management (IEEM), 1161-1165. https://doi.org/10.1109/IEEM.2016.7798060 | |
| dc.relation.references | Bouhmoud, H., Loudyi, D., & Azhar, S. (2022). Evaluation of Building’s Life Cycle Carbon Emissions Based on BIM and LCA: A Case Study of Affordable Housing in Morocco. | |
| dc.relation.references | Bragadin, M. A., Guardigli, L., Calistri, M., & Ferrante, A. (2023). Demolishing or Renovating? Life Cycle Analysis in the Design Process for Building Renovation: The ProGETonE Case. Sustainability, 15(11), 8614. https://doi.org/10.3390/su15118614 | |
| dc.relation.references | Brandtner, M., & Venkrbec, V. (2020). Non-graphical data structure for the purpose of BIM-based Life Cycle Assessment: Methodology for the Czech environment. IOP Conference Series: Earth and Environmental Science, 609, 012048. https://doi.org/10.1088/1755-1315/609/1/012048 | |
| dc.relation.references | Brockmann, T. (2019). Digitalization of building LCA and international activities – in the context of German assessment system for sustainable building. IOP Conference Series: Earth and Environmental Science, 323, 012108. https://doi.org/10.1088/1755-1315/323/1/012108 | |
| dc.relation.references | Bruce-Hyrkäs, T., Pasanen, P., & Castro, R. (2018). Overview of Whole Building Life-Cycle Assessment for Green Building Certification and Ecodesign through Industry Surveys and Interviews. Procedia CIRP, 69, 178-183. https://doi.org/10.1016/j.procir.2017.11.127 | |
| dc.relation.references | Bryde, D., Broquetas, M., & Volm, J. M. (2013). The project benefits of Building Information Modelling (BIM). International Journal of Project Management, 31(7), 971-980. https://doi.org/10.1016/j.ijproman.2012.12.001 | |
| dc.relation.references | Budig, M., Heckmann, O., Hudert, M., Ng, A. Q. B., Xuereb Conti, Z., & Lork, C. J. H. (2020). Computational screening LCA tools for early design stages. International Journal of Architectural Computing, 147807712094799. https://doi.org/10.1177/1478077120947996 | |
| dc.relation.references | Bueno, C., & Fabricio, M. M. (2016). Application of building information modelling (BIM) to perform life cycle assessment of buildings. Pós. Revista Do Programa de Pós-Graduação Em Arquitetura e Urbanismo Da FAUUSP, 23(40), 96. https://doi.org/10.11606/issn.2317-2762.v23i40p96-121 | |
| dc.relation.references | Bueno, C., & Fabricio, M. M. (2017). METHODOLOGICAL DISCUSSION OF INSERTION AND EXPORTATION OF LCA DATA EMBEDDED IN BIM ELEMENTS. 101-110. https://doi.org/10.2495/BIM170101 | |
| dc.relation.references | Bueno, C., & Fabricio, M. M. (2018). Comparative analysis between a complete LCA study and results from a BIM-LCA plug-in. Automation in Construction, 90, 188-200. https://doi.org/10.1016/j.autcon.2018.02.028 | |
| dc.relation.references | Bueno, C., Pereira, L. M., & Fabricio, M. M. (2018). Life cycle assessment and environmental-based choices at the early design stages: An application using building information modelling. Architectural Engineering and Design Management, 14(5), 332-346. https://doi.org/10.1080/17452007.2018.1458593 | |
| dc.relation.references | buildingSMART International. (2020). Industry Foundation Classes (IFC) Overview. https://www.buildingsmart.org | |
| dc.relation.references | Bynum, P., Issa, R. R. A., & Olbina, S. (2013). Building Information Modeling in Support of Sustainable Design and Construction. Journal of Construction Engineering https://doi.org/10.1061/(ASCE)CO.1943-7862.0000560 | |
| dc.relation.references | Cabeza, L. F., Rincón, L., Vilariño, V., Pérez, G., & Castell, A. (2014). Life cycle assessment (LCA) and life cycle energy analysis (LCEA) of buildings and the building sector: A review. Renewable and Sustainable Energy Reviews, 29, 394-416. https://doi.org/10.1016/j.rser.2013.08.037 | |
| dc.relation.references | Cabinet Office. (2011). Government Construction Strategy. Cabinet Office, Gobierno del Reino Unido. https://www.gov.uk/government/publications/government-construction-strategy | |
| dc.relation.references | Cai, G., & Waldmann, D. (2019). A material and component bank to facilitate material recycling and component reuse for a sustainable construction: Concept and preliminary study. Clean Technologies and Environmental Policy, 21(10), 2015-2032. https://doi.org/10.1007/s10098-019-01758-1 | |
| dc.relation.references | Caldas, L. R., Silva, M. V., Silva, V. P., Carvalho, M. T. M., & Toledo Filho, R. D. (2022). How Different Tools Contribute to Climate Change Mitigation in a Circular Building Environment?—A Systematic Literature Review. Sustainability, 14(7), 3759. https://doi.org/10.3390/su14073759 | |
| dc.relation.references | CAMACOL. (2023). ENCUESTA NACIONAL BIM 2023 (p. 8). https://app.powerbi.com/view?r=eyJrIjoiMGRiMTY0ZjAtYWEzNy00OTEwLTgwZGEtZjQ4MDQ3MDUwN jc3IiwidCI6IjI1YTdhM2RiLWIyNTctNDg4Yi04MDAxLTQ0M2E2ZTU4ZDcxNCIsImMiOjR9 | |
| dc.relation.references | Cang, Y., Luo, Z., Yang, L., & Han, B. (2020). A new method for calculating the embodied carbon emissions from buildings in schematic design: Taking “building element” as basic unit. Building and Environment, 185, 107306. https://doi.org/10.1016/j.buildenv.2020.107306 | |
| dc.relation.references | Carvalho, J. P., Alecrim, I., Bragança, L., & Mateus, R. (2020). Integrating BIM-Based LCA and Building Sustainability Assessment. Sustainability, 12(18), 7468. https://doi.org/10.3390/su12187468 | |
| dc.relation.references | Carvalho, J. P., Bragança, L., & Mateus, R. (2019). Optimising building sustainability assessment using BIM. Automation in Construction, 102, 170-182. https://doi.org/10.1016/j.autcon.2019.02.021 | |
| dc.relation.references | Carvalho, J. P., Bragança, L., & Mateus, R. (2021). Sustainable building design: Analysing the feasibility of BIM platforms to support practical building sustainability assessment. Computers in Industry, 127, 103400. https://doi.org/10.1016/j.compind.2021.103400 | |
| dc.relation.references | Castro, R., & Pasanen, P. (2019). How to design buildings with Life Cycle Assessment by accounting for the material flows in refurbishment. IOP Conference Series: Earth and Environmental Science, 225, 012019. https://doi.org/10.1088/1755-1315/225/1/012019 | |
| dc.relation.references | Cavalliere, C., Dell’Osso, G. R., Pierucci, A., & Iannone, F. (2018). Life cycle assessment data structure for building information modelling. Journal https://doi.org/10.1016/j.jclepro.2018.07.149 of Cleaner Production, 199, 193-204. | |
| dc.relation.references | Cavalliere, C., Habert, G., Dell’Osso, G. R., & Hollberg, A. (2019). Continuous BIM-based assessment of embodied environmental impacts throughout the design process. Journal of Cleaner Production, 211, 941-952. https://doi.org/10.1016/j.jclepro.2018.11.247 | |
| dc.relation.references | Cavalliere, C., Hollberg, A., Dell’Osso, G. R., & Habert, G. (2019). Consistent BIM-led LCA during the entire building design process. IOP Conference Series: Earth and Environmental Science, 323, 012099. https://doi.org/10.1088/1755-1315/323/1/012099 | |
| dc.relation.references | CCCS. (2024). Estado de la Construcción Sostenible en Colombia 2024. https://www.cccs.org.co/wp content/uploads/2024/07/Estado_de_la_Construccion_Sostenible_2024pdf.pdf | |
| dc.relation.references | Cerovsek, T. (2011). A review and outlook for a ‘Building Information Model’ (BIM): A multi-standpoint framework for technological development. Advanced https://doi.org/10.1016/j.aei.2010.06.003 Engineering Informatics, 25(2), 224-244. | |
| dc.relation.references | Chacón, J. R. (2008). Historia ampliada y comentada del análisis de ciclo de vida (ACV). Revista de la Escuela Colombiana de Ingeniería. | |
| dc.relation.references | Chang, C. C., Shi, W., Mehta, P., & Dauwels, J. (2019). Life cycle energy assessment of university buildings in tropical climate. Journal of Cleaner Production, 239, 117930. https://doi.org/10.1016/j.jclepro.2019.117930 | |
| dc.relation.references | Chau, C. K., Leung, T. M., & Ng, W. Y. (2015). A review on Life Cycle Assessment, Life Cycle Energy Assessment and Life Cycle Carbon Emissions Assessment on buildings. Applied Energy, 143, 395-413. https://doi.org/10.1016/j.apenergy.2015.01.023 | |
| dc.relation.references | Chellappandi, P., & Vijayakumar, C. S. (2018). Bibliometrics, Scientometrics, Webometrics / Cybermetrics, Informetrics and Altmetrics—An Emerging Field in Library and Information Science Research. International Journal of Education. | |
| dc.relation.references | Chen, K., Wang, J., Yu, B., Wu, H., & Zhang, J. (2021). Critical evaluation of construction and demolition waste and associated environmental impacts: A scientometric analysis. Journal of Cleaner Production, 287, 125071. https://doi.org/10.1016/j.jclepro.2020.125071 | |
| dc.relation.references | Chen, X., Huang, M., Bai, Y., & Zhang, Q.-B. (2024). Sustainability of underground infrastructure – Part 1: Digitalisation based carbon assessment and baseline for TBM tunnelling. Tunnelling and Underground Space Technology, 148, 105776. https://doi.org/10.1016/j.tust.2024.105776 | |
| dc.relation.references | Chen, Y., & Gallardo, S. (2023). A Multi-Objective Optimization Method for the Design of a Sustainable House in Ecuador by Assessing LCC and LCEI. Sustainability, 16(1), 168. https://doi.org/10.3390/su16010168 | |
| dc.relation.references | Chen, Z., Chen, L., Zhou, X., Huang, L., Sandanayake, M., & Yap, P.-S. (2024). Recent Technological Advancements in BIM and LCA Integration for Sustainable Construction: A Review. Sustainability, 16(3), 1340. https://doi.org/10.3390/su16031340 | |
| dc.relation.references | Cheng, B., Huang, J., Lu, K., Li, J., Gao, G., Wang, T., & Chen, H. (2022). BIM-enabled life cycle assessment of concrete formwork waste reduction through prefabrication. Sustainable Energy Technologies and Assessments, 53, 102449. https://doi.org/10.1016/j.seta.2022.102449 | |
| dc.relation.references | Cheng, B., Li, J., Tam, V. W. Y., Yang, M., & Chen, D. (2020). A BIM-LCA Approach for Estimating the Greenhouse Gas Emissions of Large-Scale Public Buildings: A Case Study. Sustainability, 12(2), 685. https://doi.org/10.3390/su12020685 | |
| dc.relation.references | Chhatwani, M., & Golparvar-Fard, M. (2016). Model-Driven Management a of Construction Carbon Footprint: Case Study. Construction Research Congress 2016, 1202-1212. https://doi.org/10.1061/9780784479827.121 | |
| dc.relation.references | Chiu, M.-C., & Chu, C.-H. (2012). Review of sustainable product design from life cycle perspectives. International Journal of Precision Engineering and Manufacturing, 13(7), 1259-1272. https://doi.org/10.1007/s12541-012-0169-1 | |
| dc.relation.references | Chong, H.-Y., Lee, C.-Y., & Wang, X. (2017). A mixed review of the adoption of Building Information Modelling (BIM) for sustainability. Journal of Cleaner Production, 142, 4114-4126. https://doi.org/10.1016/j.jclepro.2016.09.222 | |
| dc.relation.references | Chowdhury, A., & Ganesh, S. (2024). BIM based on energy & cost analysis in response to the day light intensity of a building. IOP Conference Series: Earth and Environmental Science, 1327(1), 012024. https://doi.org/10.1088/1755-1315/1327/1/012024 | |
| dc.relation.references | Cole, R., & Kernan, P. C. (1996). Life-cycle energy use in office buildings. Building and Environment, 31(4), 307-317. | |
| dc.relation.references | Coons, S. A. (1963). AN OUTLINE OF THE REQUIREMENTS FOR A COMPUTER-AIDED DESIGN SYSTEM. 6. | |
| dc.relation.references | Cooper, H. M., Hedges, L. V., & Valentine, J. C. (Eds.). (2019). Handbook of research synthesis and meta-analysis (3rd Edition). Russell Sage Foundation. | |
| dc.relation.references | Cornelissen, R., & Hirs, G. (2002). The value of the exergetic life cycle assessment besides the LCA. | |
| dc.relation.references | Corporación de Fomento de la Producción. (2016). PlanBIM: Estrategia de implementación de BIM en el Estado de Chile. CORFO. | |
| dc.relation.references | Creswell, J. W. (2014). RESEARCH DESIGN. Qualitative, Quantitative, and Mixed Methods Approaches (Fourth Edition). SAGE. | |
| dc.relation.references | Creswell, J. W., & Creswell, J. D. (2018). Research Design: Qualitative, Quantitative, and Mixed Methods Approaches (5ta edición). SAGE. | |
| dc.relation.references | Crippa, J., Araujo, A. M. F., Bem, D., Ugaya, C. M. L., & Scheer, S. (2020). A systematic review of BIM usage for life cycle impact assessment. Built Environment Project and Asset Management, 10(4), 603-618. https://doi.org/10.1108/BEPAM-03-2019-0028 | |
| dc.relation.references | Crippa, J., Boeing, L. C., Caparelli, A. P. A., da Costa, M. do R. de M. M., Scheer, S., Araujo, A. M. F., & Bem, D. (2018). A BIM–LCA integration technique to embodied carbon estimation applied on wall systems in Brazil. Built Environment Project and Asset Management, 8(5), 491-503. https://doi.org/10.1108/BEPAM-10-2017-0093 | |
| dc.relation.references | Cumo, F., Piras, G., Pennacchia, E., & Cinquepalmi, F. (2020). Optimization of Design and Management of a Hydroponic Greenhouse by Using BIM Application Software. International Journal of Sustainable Development and Planning, 15(2), 157-163. https://doi.org/10.18280/ijsdp.150205 | |
| dc.relation.references | Curran, M. A. (Ed.). (2012). Life cycle assessment handbook: A guide for environmentally sustainable products. Wiley/Scrivener. | |
| dc.relation.references | Dalla Mora, T., Bolzonello, E., Cavalliere, C., & Peron, F. (2020). Key Parameters Featuring BIM-LCA Integration in Buildings: A Practical Review of the Current Trends. Sustainability, 12(17), 7182. https://doi.org/10.3390/su12177182 | |
| dc.relation.references | D’Amico, A., Ciulla, G., Traverso, M., Lo Brano, V., & Palumbo, E. (2019). Artificial Neural Networks to assess energy and environmental performance of buildings: An Italian case study. Journal of Cleaner Production, 239, 117993. https://doi.org/10.1016/j.jclepro.2019.117993 | |
| dc.relation.references | Dauletbek, A., & Zhou, P. (2022). BIM-based LCA as a comprehensive method for the refurbishment of existing dwellings considering environmental compatibility, energy efficiency, and profitability: A case study in China. Journal of Building Engineering, 46, 103852. https://doi.org/10.1016/j.jobe.2021.103852 | |
| dc.relation.references | Dawood, S., Lord, R., & Dawood, N. (2009). Development of a visual whole life-cycle energy assessment framework for built environment. Proceedings of the 2009 Winter Simulation Conference (WSC), 2653-2663. https://doi.org/10.1109/WSC.2009.5429263 | |
| dc.relation.references | De Wolf, C., Cordella, M., Dodd, N., Byers, B., & Donatello, S. (2023). Whole life cycle environmental impact assessment of buildings: Developing software tool and database support for the EU framework Level(s). Resources, Conservation and Recycling, 188, 106642. https://doi.org/10.1016/j.resconrec.2022.106642 | |
| dc.relation.references | Deng, X., & Lu, K. (2023). Multi-level assessment for embodied carbon of buildings using multi-source industry foundation classes. Journal of Building Engineering, 72, 106705. https://doi.org/10.1016/j.jobe.2023.106705 | |
| dc.relation.references | Departamento Nacional de Planeación. (2021). Estrategia Nacional BIM 2020-2026. | |
| dc.relation.references | Dervishaj, A., & Gudmundsson, K. (2024). From LCA to circular design: A comparative study of digital tools for the built environment. Resources, Conservation https://doi.org/10.1016/j.resconrec.2023.107291 and Recycling, 200, 107291. | |
| dc.relation.references | Det Udomsap, A., & Hallinger, P. (2020). A bibliometric review of research on sustainable construction, 1994–2018. Journal of Cleaner Production, 254, 120073. https://doi.org/10.1016/j.jclepro.2020.120073 | |
| dc.relation.references | Dharmarathna, D., Bunster, V., & Graham, P. (2024). A review of building life cycle assessment software tools: Challenges and future directions. IOP Conference Series: Earth and Environmental Science, 1363(1), 012063. https://doi.org/10.1088/1755-1315/1363/1/012063 | |
| dc.relation.references | Di Bari, R., Jorgji, O., Horn, R., Gantner, J., & Ebertshäuser, S. (2019). Step-by-step implementation of BIM-LCA: A case study analysis associating defined construction phases with their respective environmental impacts. IOP Conference Series: Earth and Environmental Science, 323, 012105. https://doi.org/10.1088/1755 1315/323/1/012105 | |
| dc.relation.references | Díaz, J., & Álvarez, L. (2014). Sustainable Construction Approach through Integration of LCA and BIM Tools. Computing in Civil and Building Engineering (2014), 283-290. https://doi.org/10.1061/9780784413616.036 | |
| dc.relation.references | Ding, Y., Guo, Z.-Z., Zhou, S.-X., Wei, Y.-Q., She, A.-M., & Dong, J.-L. (2024). Research on carbon emissions during the construction process of prefabricated buildings based on BIM and LCA. Journal of Asian Architecture and Building Engineering, 1-13. https://doi.org/10.1080/13467581.2024.2345312 | |
| dc.relation.references | Ding, Z., Liu, S., Luo, L., & Liao, L. (2020). A building information modeling-based carbon emission measurement system for prefabricated residential buildings during the materialization phase. Journal of Cleaner Production, 264, 121728. https://doi.org/10.1016/j.jclepro.2020.121728 | |
| dc.relation.references | Dupuis, M., April, A., Lesage, P., & Forgues, D. (2017). Method to Enable LCA Analysis through Each Level of Development of a BIM https://doi.org/10.1016/j.proeng.2017.08.017 Model. Procedia Engineering, 196, 857-863. | |
| dc.relation.references | Durão, V., Costa, A. A., Silvestre, J. D., Mateus, R., & de Brito, J. (2019). Integration of environmental life cycle information in BIM objects according with the level of development. IOP Conference Series: Earth and Environmental Science, 225, 012075. https://doi.org/10.1088/1755-1315/225/1/012075 | |
| dc.relation.references | Durão, V., Costa, A. A., Silvestre, J. D., Mateus, R., Santos, R., & de Brito, J. (2020). Current Opportunities and Challenges in the Incorporation of the LCA Method in BIM. The Open Construction & Building Technology Journal, 14(1), 336-349. https://doi.org/10.2174/1874836802014010336 | |
| dc.relation.references | Durdyev, S., Dehdasht, G., Mohandes, S. R., & Edwards, D. J. (2021). Review of the Building Information Modelling (BIM) Implementation in the Context of Building Energy Assessment. Energies, 14(24), 8487. https://doi.org/10.3390/en14248487 | |
| dc.relation.references | Eadie, R., Browne, M., Odeyinka, H., McKeown, C., & McNiff, S. (2013). BIM implementation throughout the UK construction project lifecycle: An analysis. Automation in Construction, 36, 145-151. https://doi.org/10.1016/j.autcon.2013.09.001 | |
| dc.relation.references | Earles, J. M., & Halog, A. (2011). Consequential life cycle assessment: A review. The International Journal of Life Cycle Assessment, 16(5), 445-453. https://doi.org/10.1007/s11367-011-0275-9 | |
| dc.relation.references | Eastman, C. M. (1975). The use of computers instead of drawings in building design. AIA, 63 (3), 46-50. | |
| dc.relation.references | Eastman, C. M. (1999). Building product models: Computer environments supporting design and construction. CRC Press. | |
| dc.relation.references | Eastman, C. M., Teicholz, P., Sacks, R., & Liston, K. (2011). BIM handbook: A guide to building information modeling for owners, managers, designers, engineers and contractors (2nd ed). Wiley. | |
| dc.relation.references | Ebertshäuser, S., Graf, K., Von Both, P., Rexroth, K., Di Bari, R., & Horn, R. (2019). Sustainable building information modeling in the context of model-based integral planning. IOP Conference Series: Earth and Environmental Science, 323, 012113. https://doi.org/10.1088/1755-1315/323/1/012113 | |
| dc.relation.references | Eisenhardt, K. M. (1989). Building Theories from Case Study Research. 20. | |
| dc.relation.references | Eisenhardt, K. M., & Graebner, M. E. (2007). Theory Building from Cases: Opportunities and Challenges. | |
| dc.relation.references | Eleftheriadis, S., Duffour, P., & Mumovic, D. (2018). BIM-embedded life cycle carbon assessment of RC buildings using optimised structural design alternatives. Energy and Buildings, 173, 587-600. https://doi.org/10.1016/j.enbuild.2018.05.042 | |
| dc.relation.references | Eleftheriadis, S., Mumovic, D., & Greening, P. (2017). Life cycle energy efficiency in building structures: A review of current developments and future outlooks based on BIM capabilities. Renewable and Sustainable Energy Reviews, 67, 811-825. https://doi.org/10.1016/j.rser.2016.09.028 | |
| dc.relation.references | Eleftheriadis, S., Mumovic, D., Greening, P., & Chronis, A. (2015, junio 18). BIM Enabled Optimisation Framework for Environmentally Responsible and Structurally Efficient Design Systems. 32nd International Symposium on Automation and Robotics in Construction, Oulu, Finland. https://doi.org/10.22260/ISARC2015/0096 | |
| dc.relation.references | Elkington, J. (1999). Cannibals with forks: The triple bottom line of 21st century business. Capstone. | |
| dc.relation.references | Escorcia Oyola, O. (2016). Anatomía y fisiología de la edificación. Tecnología de la arquitectura. Universidad Nacional de Colombia. | |
| dc.relation.references | Eslami, H., Yaghma, A., Jayasinghe, L. B., & Waldmann, D. (2024). Comparative life cycle assessment of light frame timber and reinforced concrete masonry structural systems for single-family houses in Luxembourg. Heliyon, 10(4), e26083. https://doi.org/10.1016/j.heliyon.2024.e26083 | |
| dc.relation.references | Estève, P., Beckett, C., Pedreschi, R., Bosche, F., Morel, J. C., Charef, R., & Habert, G. (2022). Developing an integrated BIM/LCA framework to assess the sustainability of using earthen architecture. IOP Conference Series: Earth and Environmental Science, 1078(1), 012100. https://doi.org/10.1088/1755-1315/1078/1/012100 | |
| dc.relation.references | European Comission. (2024). Directive (EU) 2024/1275 of the European Parliament and of the Council of 24 April 2024 on the energy performance of buildings (recast) (Text with EEA relevance). Official Journal of the European Union. | |
| dc.relation.references | European Committee for Standardization. (2011). EN 15978:2011 – Sustainability of construction works—Assessment of environmental performance. | |
| dc.relation.references | Falegari, S., & Shirzadi Javid, A. A. (2024). Integrating building information modeling and life cycle assessment to analyze the role of climate and passive design parameters in energy consumption. Energy & Environment, 35(4), 2087 2106. https://doi.org/10.1177/0958305X221145923 | |
| dc.relation.references | Felicioni, L., Gaspari, J., Veselka, J., & Malík, Z. (2023). A comparative cradle-to-grave life cycle approach for addressing construction design choices: An applicative case study for a residential tower in Aalborg, Denmark. Energy and Buildings, 298, 113557. https://doi.org/10.1016/j.enbuild.2023.113557 | |
| dc.relation.references | Feng, H., Chen, Q., García De Soto, B., & Arashpour, M. (2022, julio 15). Using BIM and LCA to evaluate material circularity: Contributions to building design improvements. 39th International Symposium on Automation and Robotics in Construction. https://doi.org/10.22260/ISARC2022/0004 | |
| dc.relation.references | Feng, H., Kassem, M., Greenwood, D., & Doukari, O. (2023). Whole building life cycle assessment at the design stage: A BIM-based framework using environmental product declaration. International Journal of Building Pathology and Adaptation, 41(1), 109-142. https://doi.org/10.1108/IJBPA-06-2021-0091 | |
| dc.relation.references | Feng, H., Liyanage, D. R., Karunathilake, H., Sadiq, R., & Hewage, K. (2020). BIM-based life cycle environmental performance assessment of single-family houses: Renovation and reconstruction strategies for aging building stock in British Columbia. Journal https://doi.org/10.1016/j.jclepro.2019.119543 of Cleaner Production, 250, 119543. | |
| dc.relation.references | Feng, H., Sadiq, R., & Hewage, K. (2022). Exploring the current challenges and emerging approaches in whole building life cycle assessment. Canadian Journal of Civil Engineering, 49(2), 149-158. https://doi.org/10.1139/cjce 2020-0284 | |
| dc.relation.references | Fernandez, J. (2012). Material Architecture (0 ed.). Routledge. https://doi.org/10.4324/9780080940441 | |
| dc.relation.references | Ferreira González, I., Urrútia, G., & Alonso-Coello, P. (2011). Revisiones sistemáticas y metaanálisis: Bases conceptuales e interpretación. Revista Española de Cardiología, 64(8), 688-696. https://doi.org/10.1016/j.recesp.2011.03.029 | |
| dc.relation.references | Figl, H., Ilg, M., & Battisti, K. (2019). 6D BIM–Terminal: Missing Link for the design of CO2 neutral buildings. IOP Conference Series: Earth and Environmental Science, 323, 012104. https://doi.org/10.1088/1755 1315/323/1/012104 | |
| dc.relation.references | Figueiredo, K., Pierott, R., Hammad, A. W. A., & Haddad, A. (2021). Sustainable material choice for construction projects: A Life Cycle Sustainability Assessment framework based on BIM and Fuzzy-AHP. Building and Environment, 196, 107805. https://doi.org/10.1016/j.buildenv.2021.107805 | |
| dc.relation.references | Filho, M. V. A. P. M., Da Costa, B. B. F., Najjar, M., Figueiredo, K. V., De Mendonça, M. B., & Haddad, A. N. (2022). Sustainability Assessment of a Low-Income Building: A BIM-LCSA-FAHP-Based Analysis. Buildings, 12(2), 181. https://doi.org/10.3390/buildings12020181 | |
| dc.relation.references | Fink, A. (2014). Conducting research literature reviews: From the internet to paper (Fourth edition). SAGE. | |
| dc.relation.references | Finkbeiner, M., Inaba, A., Tan, R., Christiansen, K., & Klüppel, H.-J. (2006). The New International Standards for Life Cycle Assessment: ISO 14040 and ISO 14044. The International Journal of Life Cycle Assessment, 11(2), 80 85. https://doi.org/10.1065/lca2006.02.002 | |
| dc.relation.references | Finkbeiner, M., Schau, E. M., Lehmann, A., & Traverso, M. (2010). Towards Life Cycle Sustainability Assessment. Sustainability, 2(10), 3309-3322. https://doi.org/10.3390/su2103309 | |
| dc.relation.references | Finnveden, G., Hauschild, M. Z., Ekvall, T., Guinée, J., Heijungs, R., Hellweg, S., Koehler, A., Pennington, D., & Suh, S. (2009). Recent developments in Life Cycle Assessment. Journal of Environmental Management, 91(1), 1-21. https://doi.org/10.1016/j.jenvman.2009.06.018 | |
| dc.relation.references | Fnais, A., Rezgui, Y., Petri, I., Beach, T., Yeung, J., Ghoroghi, A., & Kubicki, S. (2022). The application of life cycle assessment in buildings: Challenges, and directions for future research. The International Journal of Life Cycle Assessment, 27(5), 627-654. https://doi.org/10.1007/s11367-022-02058-5 | |
| dc.relation.references | Fokaides, P. A., Apanaviciene, R., Černeckiene, J., Jurelionis, A., Klumbyte, E., Kriauciunaite-Neklejonoviene, V., Pupeikis, D., Rekus, D., Sadauskiene, J., Seduikyte, L., Stasiuliene, L., Vaiciunas, J., Valancius, R., & Ždankus, T. (2020). Research Challenges and Advancements in the field of Sustainable Energy Technologies in the Built Environment. Sustainability, 12(20), 8417. https://doi.org/10.3390/su12208417 | |
| dc.relation.references | Fonseca Arenas, N., & Shafique, M. (2023). Recent progress on BIM-based sustainable buildings: State of the art review. Developments in the Built Environment, 15, 100176. https://doi.org/10.1016/j.dibe.2023.100176 | |
| dc.relation.references | Forth, K., Abualdenien, J., & Borrmann, A. (2023a). Calculation of embodied GHG emissions in early building design stages using BIM and NLP-based semantic model healing. Energy and Buildings, 284, 112837. https://doi.org/10.1016/j.enbuild.2023.112837 | |
| dc.relation.references | Forth, K., Abualdenien, J., & Borrmann, A. (2023b). NLP-based Semantic model healing for calculating embodied carbon in early building design stages. | |
| dc.relation.references | Forth, K., Braun, A., & Borrmann, A. (2019). BIM-integrated LCA - model analysis and implementation for practice. IOP Conference Series: Earth and Environmental Science, 323, 012100. https://doi.org/10.1088/1755 1315/323/1/012100 | |
| dc.relation.references | Forth, K., Hollberg, A., & Borrmann, A. (2023). BIM4EarlyLCA: An interactive visualization approach for early design support based on uncertain LCA results using open BIM. Developments in the Built Environment, 16, 100263. https://doi.org/10.1016/j.dibe.2023.100263 | |
| dc.relation.references | Forth, K., Höper, J., Veselka, J., Theißen, S., & Borrmann, A. (2022, julio 24). Towards life cycle assessment of technical building services in early design phases using building information modelling. 2022 European Conference on Computing in Construction. https://doi.org/10.35490/EC3.2022.178 | |
| dc.relation.references | Frischknecht, R., Birgisdottir, H., Chae, C.-U., Lützkendorf, T., & Passer, A. (2019). IEA EBC Annex 72—Assessing life cycle related environmental impacts caused by buildings – targets and tasks. IOP Conference Series: Earth and Environmental Science, 323, 012042. https://doi.org/10.1088/1755-1315/323/1/012042 | |
| dc.relation.references | Frischknecht, R., Birgisdottir, H., Chae, C.-U., Lützkendorf, T., Passer, A., Alsema, E., Balouktsi, M., Berg, B., Dowdell, D., García Martínez, A., Habert, G., Hollberg, A., König, H., Lasvaux, S., Llatas, C., Nygaard Rasmussen, F., Peuportier, B., Ramseier, L., Röck, M., … Yang, W. (2019). Comparison of the environmental assessment of an identical office building with national methods. IOP Conference Series: Earth and Environmental Science, 323, 012037. https://doi.org/10.1088/1755-1315/323/1/012037 | |
| dc.relation.references | Gan, V. J. L., Lo, I. M. C., Ma, J., Tse, K. T., Cheng, J. C. P., & Chan, C. M. (2020). Simulation optimisation towards energy efficient green buildings: Current status and future trends. Journal of Cleaner Production, 254, 120012. https://doi.org/10.1016/j.jclepro.2020.120012 | |
| dc.relation.references | Gantner, J., Lenz, K., Horn, R., von Both, P., & Ebertshäuser, S. (2018). Ökobau.dat 3.0–Quo Vadis? Buildings, 8(9), 129. https://doi.org/10.3390/buildings8090129 | |
| dc.relation.references | Gao, G., Liu, Y.-S., Wang, M., Gu, M., & Yong, J.-H. (2015). A query expansion method for retrieving online BIM resources based on Industry Foundation Classes. Automation in Construction, 56, 14-25. https://doi.org/10.1016/j.autcon.2015.04.006 | |
| dc.relation.references | Gao, Y., Wang, J., & Yiu, T. W. (2024). Multi-information integration-based life cycle analysis of greenhouse gas emissions for prefabricated construction: A case study of Shenzhen. Environmental Impact Assessment Review, 104, 107330. https://doi.org/10.1016/j.eiar.2023.107330 | |
| dc.relation.references | García-López, J., Hernández-Valencia, M., Roa-Fernández, J., Mascort-Albea, E. J., & Herrera-Limones, R. (2024). Balancing construction and operational carbon emissions: Evaluating neighbourhood renovation strategies. Journal of Building Engineering, 94, 109993. https://doi.org/10.1016/j.jobe.2024.109993 | |
| dc.relation.references | García-Martínez, A., Gómez de Cózar, J. C., & Ruiz Alfonsea, M. (2018). Using BIM-based methods to obtain life cycle environmental benchmarks for buildings. | |
| dc.relation.references | Gardezi, S. S. S., & Shafiq, N. (2019). Operational carbon footprint prediction model for conventional tropical housing: A Malaysian prospective. International Journal of Environmental Science and Technology, 16(12), 7817-7826. https://doi.org/10.1007/s13762-019-02371-x | |
| dc.relation.references | Gardezi, S. S. S., Shafiq, N., & Khan, M. W. A. (2022). Relational pre-impact assessment of conventional housing features and carbon footprint for achieving sustainable built environment. Environment, Development and Sustainability, 24(6), 8441-8463. https://doi.org/10.1007/s10668-021-01793-3 | |
| dc.relation.references | Gardezi, S. S. S., Shafiq, N., Nuruddin, Muhd. F., & wan Abdullah, N. A. (2016). Factors affecting the embodied carbon footprint potential- Assessment of conventional Malaysian housing habitat. https://doi.org/10.1201/b21942 | |
| dc.relation.references | Gardezi, S. S. S., Shafiq, N., Zawawi, N. A. W. A., Khamidi, M. F., & Farhan, S. A. (2016). A multivariable regression tool for embodied carbon footprint prediction in housing habitat. Habitat International, 53, 292-300. https://doi.org/10.1016/j.habitatint.2015.11.005 | |
| dc.relation.references | Garraín, D., Fazio, S., de la Rúa, C., Recchioni, M., Lechón, Y., & Mathieux, F. (2015). Background qualitative analysis of the European Reference Life Cycle Database (ELCD) energy datasets – part I: Fuel datasets. SpringerPlus, 4(1), 151. https://doi.org/10.1186/s40064-015-0915-9 | |
| dc.relation.references | Ge, S., Zhang, X., & Zhang, X. (2024). Integration of BIM and LCA: A system to predict and optimise embodied carbon for prefabricated buildings. HKIE Transactions, 30(3), 44-55. https://doi.org/10.33430/V30N3THIE-2022-0052 | |
| dc.relation.references | George, J., & Jacob, J. (2018). Assessment and Reduction of Embodied Carbon in buildings. 05(04), 10. | |
| dc.relation.references | Ghaffarianhoseini, A., Tookey, J., Ghaffarianhoseini, A., Naismith, N., Azhar, S., Efimova, O., & Raahemifar, K. (2017). Building Information Modelling (BIM) uptake: Clear benefits, understanding its implementation, risks and challenges. Renewable and https://doi.org/10.1016/j.rser.2016.11.083 | |
| dc.relation.references | Gharbia, M., Chang-Richards, A., Lu, Y., Zhong, R. Y., & Li, H. (2020). Robotic technologies for on-site building construction: A systematic review. https://doi.org/10.1016/j.jobe.2020.101584 Journal of Building Engineering, 32, 101584. | |
| dc.relation.references | Ghazinoory, S., Abdi, M., & Azadegan-Mehr, M. (2011). SWOT METHODOLOGY: A STATE-OF-THE-ART REVIEW FOR THE PAST, A FRAMEWORK FOR THE FUTURE / SSGG METODOLOGIJA: PRAEITIES IR ATEITIES ANALIZĖ. Journal of Business Economics and Management, 12(1), 24-48. https://doi.org/10.3846/16111699.2011.555358 | |
| dc.relation.references | Glass, G. (1976). Primary, Secondary, and Meta-Analysis of Research. 6. | |
| dc.relation.references | Gomes, V., Barros, N. N., & Ruschel, R. C. (2019). Building Information Modelling for Whole-Building LCA: BIM4LCA. IOP Conference Series: Earth and Environmental Science, 290, 012044. https://doi.org/10.1088/1755 1315/290/1/012044 | |
| dc.relation.references | Google. (2025). NotebookLM Pro [Software]. https://notebooklm.google.com | |
| dc.relation.references | Gradziński, P. (2017). Application of the Life Cycle Analysis and the Building Information Modelling Software in the Architectural Climate Change-Oriented Design Process. IOP Conference Series: Materials Science and Engineering, 245, 042081. https://doi.org/10.1088/1757-899X/245/4/042081 | |
| dc.relation.references | Grant, M. J., & Booth, A. (2009). A typology of reviews: An analysis of 14 review types and associated methodologies: A typology of reviews, Maria J. Grant & Andrew Booth. Health Information & Libraries Journal, 26(2), 91-108. https://doi.org/10.1111/j.1471-1842.2009.00848.x | |
| dc.relation.references | Gu, N., & London, K. (2010). Understanding and facilitating BIM adoption in the AEC industry. Automation in Construction, 19(8), 988-999. https://doi.org/10.1016/j.autcon.2010.09.002 | |
| dc.relation.references | Gudnason, G., & Pauwels, P. (2016). SemCat: Publishing and Accessing Building Product Information as Linked Data. 9. | |
| dc.relation.references | Guerriero, A., Busio, F., Saidani, M., Boje, C., & Mack, N. (2024). Combining Building Information Model and Life Cycle Assessment for Defining Circular https://doi.org/10.3390/su16114561 Economy Strategies. Sustainability, 16(11), 4561. https://doi.org/10.3390/su16114561 | |
| dc.relation.references | Guinée, J. (2001). Handbook on life cycle assessment—Operational guide to the ISO standards. 1. | |
| dc.relation.references | Guinée, J. B., Heijungs, R., Huppes, G., Zamagni, A., Masoni, P., Buonamici, R., Ekvall, T., & Rydberg, T. (2011). Life Cycle Assessment: Past, Present, and Future. Environmental Science & Technology, 45(1), 90-96. https://doi.org/10.1021/es101316v | |
| dc.relation.references | Guinée, J., Udo de Haes, H. A., & Huppes, G. (1993). Quantitative life cycle assessment of products 2. Classification, valuation and improvement analysis. | |
| dc.relation.references | Gutiérrez, A. R. I., & Espinosa, J. C. M. (2024). Building and sustainability information modeling: An analysis of its thematic structure. Iberoamerican Journal of Science Measurement and Communication, 4(1), 1-15. https://doi.org/10.47909/ijsmc.98 | |
| dc.relation.references | Haddad, A. N., Silva, A. B., Hammad, A. W. A., Najjar, M. K., Vazquez, E. G., & Tam, V. W. Y. (2023). An integrated approach of building information modelling and life cycle assessment (BIM-LCA) for gas and solar water heating systems. International Journal https://doi.org/10.1080/15623599.2022.2068179 of Construction Management, 23(14), 2452-2468. | |
| dc.relation.references | Hakimi, O., Liu, H., Abudayyeh, O., Houshyar, A., Almatared, M., & Alhawiti, A. (2023). Data Fusion for Smart Civil Infrastructure Management: A Conceptual Digital Twin Framework. Buildings, 13(11), 2725. https://doi.org/10.3390/buildings13112725 | |
| dc.relation.references | Häkkinen, T., Kuittinen, M., Ruuska, A., & Jung, N. (2015). Reducing embodied carbon during the design process of buildings. Journal of Building Engineering, 4, 1-13. https://doi.org/10.1016/j.jobe.2015.06.005 | |
| dc.relation.references | Han, D., Kalantari, M., & Rajabifard, A. (2021). Building Information Modeling (BIM) for Construction and Demolition Waste Management in Australia: https://doi.org/10.3390/su132312983 A Research Agenda. Sustainability, 13(23), 12983. | |
| dc.relation.references | Han, D., & Rajabifard, A. (2024). Improving the Decision-Making for Sustainable Demolition Waste Management by Combining a Building Information Modelling-Based Life Cycle Sustainability Assessment Framework and Hybrid Multi-Criteria Decision-Aiding Approach. Recycling, 9(4), 70. https://doi.org/10.3390/recycling9040070 | |
| dc.relation.references | Hao, J. L., Cheng, B., Lu, W., Xu, J., Wang, J., Bu, W., & Guo, Z. (2020). Carbon emission reduction in prefabrication construction during materialization stage: A BIM-based life-cycle assessment approach. Science of The Total Environment, 723, 137870. https://doi.org/10.1016/j.scitotenv.2020.137870 | |
| dc.relation.references | Hao, J. L., Zhao, W., Gong, G., Ma, W., Li, L., & Zhang, Y. (2024). Catalyzing sustainability through prefabrication: Integrating BIM-LCA for assessing embodied carbon in timber formwork waste. Sustainable Chemistry and Pharmacy, 41, 101698. https://doi.org/10.1016/j.scp.2024.101698 | |
| dc.relation.references | Hardin, B., & McCool, D. (2015). BIM and construction management: Proven tools, methods, and workflows. John Wiley & Sons. | |
| dc.relation.references | Harter, H., Schneider-Marin, P., & Lang, W. (2019). The energy grey zone—Uncertainty in embedded energy and greenhouse gas emissions assessment of buildings in early design phases. 8. | |
| dc.relation.references | Harter, H., Singh, M. M., Schneider-Marin, P., Lang, W., & Geyer, P. (2020). Uncertainty Analysis of Life Cycle Energy Assessment in Early Stages of https://doi.org/10.1016/j.enbuild.2019.109635 Design. Energy and Buildings, 208, 109635. | |
| dc.relation.references | Harter, H., Willenborg, B., Lang, W., & Kolbe, T. H. (2023). Climate-neutral municipal building stock—Life cycle assessment of large residential building stocks based on semantic 3D city models. Energy and Buildings, 292, 113141. https://doi.org/10.1016/j.enbuild.2023.113141 | |
| dc.relation.references | Hasik, V., Escott, E., Bates, R., Carlisle, S., Faircloth, B., & Bilec, M. M. (2019). Comparative whole-building life cycle assessment of renovation and new construction. Building and Environment, 161, 106218. https://doi.org/10.1016/j.buildenv.2019.106218 | |
| dc.relation.references | Hauschild, M., Jeswiet, J., & Alting, L. (2005). From Life Cycle Assessment to Sustainable Production: Status and Perspectives. CIRP Annals, 54(2), 1-21. https://doi.org/10.1016/S0007-8506(07)60017-1 | |
| dc.relation.references | Hauschild, M., Rosenbaum, R. K., & Olsen, S. I. (Eds.). (2018). Life Cycle Assessment. Theory and Practice. Springer International Publishing. https://doi.org/10.1007/978-3-319-56475-3 | |
| dc.relation.references | He, Q., Wang, G., Luo, L., Shi, Q., Xie, J., & Meng, X. (2017). Mapping the managerial areas of Building Information Modeling (BIM) using scientometric analysis. International Journal of Project Management, 35(4), 670-685. https://doi.org/10.1016/j.ijproman.2016.08.001 | |
| dc.relation.references | Hellweg, S., & Canals, L. (2014). Emerging approaches, challenges and opportunities in life cycle assessment. Science, 344(6188), 1109-1113. https://doi.org/10.1126/science.1248361 | |
| dc.relation.references | Helms, M. M., & Nixon, J. (2010). Exploring SWOT analysis – where are we now?: A review of academic research from the decade. Journal of https://doi.org/10.1108/17554251011064837 Strategy and Management, 3(3), 215-251. | |
| dc.relation.references | Hendrickson, C., Horvath, A., Joshi, S., & Lave, L. (1998). Economic Input―Output Models for Environmental Life-Cycle Assessment. 8. | |
| dc.relation.references | Hernández, R., & Mendoza, C. (2018). Metodología de la investigación. Las rutas cuantitativa, cualitativa y mixta (Primera Edición). McGraw Hill. | |
| dc.relation.references | Hernández Sampieri, R., Baptista Lucio, P., & Fernández Collado, C. (2014). Metodología de la investigación. http://www.ebooks7-24.com/?il=721 | |
| dc.relation.references | Higgins, J. P. T., Thomas, J., Chandler, J., Cumpston, M., Li, T., Page, M. J., & Welch, V. A. (Eds.). (2020). Cochrane handbook for systematic reviews of interventions (Second edition). Wiley-Blackwell. | |
| dc.relation.references | Hochschorner, E., & Finnveden, G. (2003). Evaluation of two simplified Life Cycle assessment methods. The International Journal of Life Cycle Assessment, 8(3), 119-128. https://doi.org/10.1007/BF02978456 | |
| dc.relation.references | Hollberg, A., Agustí-Juan, I., Lichtenheld, T., & Klüber, N. (2019). Design-integrated environmental performance feedback based on early-BIM. 7. | |
| dc.relation.references | Hollberg, A., Genova, G., & Habert, G. (2020). Evaluation of BIM-based LCA results for building design. Automation in Construction, 109, 102972. https://doi.org/10.1016/j.autcon.2019.102972 | |
| dc.relation.references | Hong, J., Kang, H., An, J., Choi, J., Hong, T., Park, H. S., & Lee, D.-E. (2021). Towards environmental sustainability in the local community: Future insights for managing the hazardous pollutants at construction sites. Journal of Hazardous Materials, 403, 123804. https://doi.org/10.1016/j.jhazmat.2020.123804 | |
| dc.relation.references | Honic, M., Kovacic, I., & Rechberger, H. (2019). Improving the recycling potential of buildings through Material Passports (MP): An Austrian case study. Journal of Cleaner Production, 217, 787-797. https://doi.org/10.1016/j.jclepro.2019.01.212 | |
| dc.relation.references | Honic, M., Kovacic, I., Sibenik, G., & Rechberger, H. (2019). Data- and stakeholder management framework for the implementation of BIM-based Material Passports. Journal of Building Engineering, 23, 341-350. https://doi.org/10.1016/j.jobe.2019.01.017 | |
| dc.relation.references | Horn, R., Ebertshäuser, S., Di Bari, R., Jorgji, O., Traunspurger, R., & Both, P. von. (2020). The BIM2LCA Approach: An Industry Foundation Classes (IFC)-Based Interface to Integrate Life Cycle Assessment in Integral Planning. Sustainability, 12(16), 6558. https://doi.org/10.3390/su12166558 | |
| dc.relation.references | Hosamo, H., Coelho, G. B. A., Buvik, E., Drissi, S., & Kraniotis, D. (2024). Building sustainability through a novel exploration of dynamic LCA uncertainty: Overview and state of the art. Building and Environment, 264, 111922. https://doi.org/10.1016/j.buildenv.2024.111922 | |
| dc.relation.references | Hossain, Md. U., Ng, S. T., Antwi-Afari, P., & Amor, B. (2020). Circular economy and the construction industry: Existing trends, challenges and prospective framework for sustainable construction. Renewable and Sustainable Energy Reviews, 130, 109948. https://doi.org/10.1016/j.rser.2020.109948 | |
| dc.relation.references | Hu, M. (2019). Building impact assessment—A combined life cycle assessment and multi-criteria decision analysis framework. Resources, Conservation https://doi.org/10.1016/j.resconrec.2019.104410 and Recycling, 150, 104410. | |
| dc.relation.references | Huang, Z., Xu, J., & Song, Y. (2020). A BIM-LCA Integrated Environmental Impact Assessment for Prefabricated Concrete Residential Buildings. ICCREM 2020, 321-329. https://doi.org/10.1061/9780784483237.039 | |
| dc.relation.references | Hussain, M., Zheng, B., Chi, H.-L., Hsu, S.-C., & Chen, J.-H. (2023). Automated and continuous BIM-based life cycle carbon assessment for infrastructure design projects. Resources, Conservation and Recycling, 190, 106848. https://doi.org/10.1016/j.resconrec.2022.106848 | |
| dc.relation.references | Iddon, C. R., & Firth, S. K. (2013). Embodied and operational energy for new-build housing: A case study of construction methods in the UK. Energy and Buildings, 67, 479-488. https://doi.org/10.1016/j.enbuild.2013.08.041 | |
| dc.relation.references | Inharwararak, P., & Stravoravdis, S. (2023). Building information modelling-based life cycle assessment (BIM-LCA) for housing estates in Thailand. IOP Conference Series: Earth and Environmental Science, 1261(1), 012002. https://doi.org/10.1088/1755-1315/1261/1/012002 | |
| dc.relation.references | International Energy Agency (IEA). (2024). World Energy Outlook 2024. | |
| dc.relation.references | International Organization for Standardization. (2016). ISO 29481-1:2016—Building information models—Information delivery manual—Part 1: Methodology and format. ISO. | |
| dc.relation.references | International Organization for Standardization. (2018). ISO 19650-1: Organization and digitization of information about buildings and civil engineering works, including building information modelling (BIM)—Information management using building information modelling—Part 1: Concepts and principles (Versión ISO 19650 1:2018). ISO. https://www.iso.org/standard/68078.html | |
| dc.relation.references | Islam, H., Jollands, M., & Setunge, S. (2015). Life cycle assessment and life cycle cost implication of residential buildings—A review. Renewable https://doi.org/10.1016/j.rser.2014.10.006 | |
| dc.relation.references | ISO. (2007a). NTC-ISO 14040. Gestión Ambiental. Análisis de Ciclo de Vida. Principios y Marco de Referencia. ICONTEC. | |
| dc.relation.references | ISO. (2007b). NTC-ISO 14044. Gestión Ambiental. Análisis de Ciclo de Vida. Requisistos y Directrices. Requisitos del Ciclo de Vida. ICONTEC. | |
| dc.relation.references | Jafari, M., Khoshand, A., Sadeghi, N., & Mirzanagh, P. A. (2023). A comparative LCA of external wall assemblies in context of Iranian market: Considering embodied and operational energy through BIM application. Environmental Science and Pollution Research, 31(5), 7364-7379. https://doi.org/10.1007/s11356-023-31451-2 | |
| dc.relation.references | Jagruthi, K., Ciddarth, N., & Kannan, M. R. (2014). LIFE CYCLE ASSESSMENT OF THERMAL INSULATING BUILDING MATERIALS USING BUILDING INFORMATION MODELLING. 9(3), 10. | |
| dc.relation.references | Jalaei, F., Guest, G., Gaur, A., & Zhang, J. (2020). Exploring the effects that a non-stationary climate and dynamic electricity grid mix has on whole building life cycle assessment: A multi-city comparison. Sustainable Cities and Society, 61, 102294. https://doi.org/10.1016/j.scs.2020.102294 | |
| dc.relation.references | Jalaei, F., & Jrade, A. (2013). Integrating Building Information Modeling (BIM), Energy Analysis and Simulation Tools to Conceptually Design Sustainable Buildings. 10. | |
| dc.relation.references | Jalaei, F., Zoghi, M., & Khoshand, A. (2019). Life cycle environmental impact assessment to manage and optimize construction waste using Building Information Modeling (BIM). International Journal of Construction Management, 1-18. https://doi.org/10.1080/15623599.2019.1583850 | |
| dc.relation.references | Jamoussi, B., Abu-Rizaiza, A., & AL-Haij, A. (2022). Sustainable Building Standards, Codes and Certification Systems: The Status Quo and Future Directions in Saudi Arabia. Sustainability, 14(16), 10314. https://doi.org/10.3390/su141610314 | |
| dc.relation.references | Jayawardana, A. S., Perera, N. G. R., & Perera, L. A. S. R. (2021). “Cradle to Gate” assessment of material related embodied carbon: A design stage stratagem for mid-rise housing in Sri Lanka. Energy and Buildings, 230, 110542. https://doi.org/10.1016/j.enbuild.2020.110542 | |
| dc.relation.references | Jesson, J., Matheson, L., & Lacey, F. M. (2011). Doing your literature review: Traditional and systematic techniques. SAGE. | |
| dc.relation.references | Jiang, S., & Lei, W. (2014). The Application of BIM in Green Building Energy Saving: Take Helsinki Music Center as an Example. Advanced Materials Research, 935, 3-7. https://doi.org/10.4028/www.scientific.net/AMR.935.3 | |
| dc.relation.references | Jolliet, O., Margni, M., Charles, R., Humbert, S., Payet, J., Rebitzer, G., & Rosenbaum, R. (2003). IMPACT 2002+: A new life cycle impact assessment methodology. The International Journal of Life Cycle Assessment, 8(6), 324 330. https://doi.org/10.1007/BF02978505 | |
| dc.relation.references | Joshi, S. (2000). Product Environmental Life-Cycle Assessment Using Input-Output Techniques. Journal of Industrial Ecology, 3(2-3), 95-120. https://doi.org/10.1162/108819899569449 | |
| dc.relation.references | Jrade, A., & Jalaei, F. (2013). Integrating building information modelling with sustainability to design building projects at the conceptual stage. Building Simulation, 6(4), 429-444. https://doi.org/10.1007/s12273-013-0120-0 | |
| dc.relation.references | Jrade, A., Jalaei, F., Zhang, J. J., Jalilzadeh Eirdmousa, S., & Jalaei, F. (2023). Potential Integration of Bridge Information Modeling and Life Cycle Assessment/Life Cycle Costing Tools for Infrastructure Projects within Construction 4.0: A Review. Sustainability, 15(20), 15049. https://doi.org/10.3390/su152015049 | |
| dc.relation.references | Jung, Y., & Joo, M. (2011). Building information modelling (BIM) framework for practical implementation. Automation in Construction, 20(2), 126-133. https://doi.org/10.1016/j.autcon.2010.09.010 | |
| dc.relation.references | Jusselme, T., Rey, E., & Andersen, M. (2020). Surveying the environmental life-cycle performance assessments: Practice and context at early building design stages. Sustainable Cities and Society, 52, 101879. https://doi.org/10.1016/j.scs.2019.101879 | |
| dc.relation.references | Kaewunruen, S., Baniotopoulos, C., Guo, Y., Sengsri, P., Teuffel, P., & Bajare, D. (2024). 6D-BIM Applications to Enrich Circular Value Chains and Stakeholder Engagement Within Built Environments. En V. Ungureanu, L. Bragança, C. Baniotopoulos, & K. M. Abdalla (Eds.), 4th International Conference «Coordinating Engineering for Sustainability and Resilience» & Midterm Conference of CircularB “Implementation of Circular Economy in the Built Environment” (Vol. 489, pp. 346-356). Springer Nature Switzerland. https://doi.org/10.1007/978-3 031-57800-7_32 | |
| dc.relation.references | Kaghembega, W. S.-H., Chen, S., Tchewafei, A., Jiang, K., & Yingying, L. (2023). Evaluation of environmental impact and GHG emission with energy system modeling combined with LCA in building sector: A review. E3S Web of Conferences, 433, 02001. https://doi.org/10.1051/e3sconf/202343302001 | |
| dc.relation.references | Kamari, A., Paari, A., & Torvund, H. Ø. (2020). BIM-Enabled Virtual Reality (VR) for Sustainability Life Cycle and Cost Assessment. Sustainability, 13(1), 249. https://doi.org/10.3390/su13010249 | |
| dc.relation.references | Kanafani, K., Kjær Zimmermann, R., Nygaard Rasmussen, F., & Birgisdóttir, H. (2021). Learnings from Developing a Context-Specific LCA Tool for Buildings—The Case of LCAbyg 4. Sustainability, 13(3), 1508. https://doi.org/10.3390/su13031508 | |
| dc.relation.references | Katebi, A., Eghdam, H. H., & Asadollahfardi, G. (2024). LCA and economic cradle-to-gate analysis on the reuse of a temporary building. Environmental Science and Pollution Research, 31(49), 59087-59102. https://doi.org/10.1007/s11356-024-35132-6 | |
| dc.relation.references | Keyhani, M., Bahadori-Jahromi, A., Godfrey, P., Keihani, R., & Amirkhani, S. (2024). Analysing carbon impacts of green roof at Hilton Watford: Life-cycle assessment approach. Proceedings of the Institution of Civil Engineers - Waste and Resource Management, 177(4), 183-195. https://doi.org/10.1680/jwarm.23.00037 | |
| dc.relation.references | Khan, D., Khan, E. A., Tara, M. S., Shujaa, S., & Gardezi, S. (2021). Embodied Carbon Footprint Assessment of a Conventional Commercial Building Using BIM. En S. M. Ahmed, P. Hampton, S. Azhar, & A. D. Saul (Eds.), Collaboration and Integration in Construction, Engineering, Management and Technology (pp. 247-250). Springer International Publishing. https://doi.org/10.1007/978-3-030-48465-1_41 | |
| dc.relation.references | Khan, M., Dani, A. A., Lim, J. B. P., & Roy, K. (2024). Appraising the Feasibility of 3D Printing Construction in New Zealand Housing. Buildings, 14(4), 1084. https://doi.org/10.3390/buildings14041084 | |
| dc.relation.references | Khasreen, M., Banfill, P. F., & Menzies, G. (2009). Life-Cycle Assessment and the Environmental Impact of Buildings: A Review. Sustainability, 1(3), 674-701. https://doi.org/10.3390/su1030674 | |
| dc.relation.references | Khosrowshahi, F., & Arayici, Y. (2012). Roadmap for implementation of BIM in the UK construction industry. Engineering, Construction and https://doi.org/10.1108/09699981211277531 Architectural Management, 19(6), 610-635. | |
| dc.relation.references | Kiamili, C., Hollberg, A., & Habert, G. (2020). Detailed Assessment of Embodied Carbon of HVAC Systems for a New Office Building Based on BIM. Sustainability, 12(8), 3372. https://doi.org/10.3390/su12083372 | |
| dc.relation.references | Kim, H., Roh, S., & Kim, J. (2024). Embodied carbon of BIM bridge models according to the application of off-site prefabrication: Precast concrete applied to superstructure and substructure. Developments in the Built Environment, 20, 100550. https://doi.org/10.1016/j.dibe.2024.100550 | |
| dc.relation.references | Kim, K. P. (2019). BIM-Enabled Sustainable Housing Refurbishment—LCA Case Study. En Sustainable Construction Technologies (pp. 349-394). Elsevier. https://doi.org/10.1016/B978-0-12-811749-1.00019-5 | |
| dc.relation.references | Kim, S., Kim, H., Lee, J., Hong, T., & Jeong, K. (2023). An Integrated Assessment Framework of Economic, Environmental, and Human Health Impacts Using Scan-to-BIM and Life-Cycle Assessment in Existing Buildings. Journal of Management https://doi.org/10.1061/JMENEA.MEENG-5600 in Engineering, 39(5), 04023034. | |
| dc.relation.references | Kiss, B., & Szalay, Z. (2020). Modular approach to multi-objective environmental optimization of buildings. Automation in Construction, 111, 103044. https://doi.org/10.1016/j.autcon.2019.103044 | |
| dc.relation.references | Kloepffer, W. (2008). Life cycle sustainability assessment of products: (With Comments by Helias A. Udo de Haes, p. 95). The International Journal of Life Cycle Assessment, 13(2), 89-95. https://doi.org/10.1065/lca2008.02.376 | |
| dc.relation.references | Klöpffer, W. (1997). Life cycle assessment: From the beginning to the current state. Environmental Science and Pollution Research, 4(4), 223-228. https://doi.org/10.1007/BF02986351 | |
| dc.relation.references | Klumbyte, E., Georgali, P.-Z., Spudys, P., Giama, E., Morkunaite, L., Pupeikis, D., Jurelionis, A., & Fokaides, P. (2023). Enhancing whole building life cycle assessment through building information modelling: Principles and best practices. Energy and Buildings, 296, 113401. https://doi.org/10.1016/j.enbuild.2023.113401 | |
| dc.relation.references | Kmet, L. M., Lee, R. C., Cook, L. S., & Alberta Heritage Foundation for Medical Research. (2004). Standard quality assessment criteria for evaluating primary research papers from a variety of fields. Alberta Heritage Foundation for Medical Research. https://www.deslibris.ca/ID/200548 | |
| dc.relation.references | Krantz, J., Larsson, J., Lu, W., & Olofsson, T. (2015). Assessing Embodied Energy and Greenhouse Gas Emissions in Infrastructure Projects. Buildings, 5(4), 1156-1170. https://doi.org/10.3390/buildings5041156 | |
| dc.relation.references | Krigsvoll, G. (2008). Life Cycle Costing as part of decision making—Use of building information models. 8. | |
| dc.relation.references | Kulahcioglu, T., Dang, J., & Toklu, C. (2012). A 3D analyzer for BIM-enabled Life Cycle Assessment of the whole process of construction. 18, 12. | |
| dc.relation.references | Kumar, D. R. (2011). Research Methodology. A step-by-step guide for beginners (Third Edition). SAGE. | |
| dc.relation.references | Kurian, R., Kulkarni, K. S., Ramani, P. V., Meena, C. S., Kumar, A., & Cozzolino, R. (2021). Estimation of Carbon Footprint of Residential Building in Warm Humid Climate of India through BIM. Energies, 14(14), 4237. https://doi.org/10.3390/en14144237 | |
| dc.relation.references | Kylili, A., & Fokaides, P. A. (2017). Policy trends for the sustainability assessment of construction materials: A review. Sustainable Cities and Society, 35, 280-288. https://doi.org/10.1016/j.scs.2017.08.013 | |
| dc.relation.references | Kylili, A., Fokaides, P. A., Vaiciunas, J., & Seduikyte, L. (2016). Integration of Building Information Modelling (BIM) and Life Cycle Assessment (LCA) for sustainable constructions. Journal of Sustainable Architecture and Civil Engineering, 13(4), 28-38. https://doi.org/10.5755/j01.sace.13.4.12862 | |
| dc.relation.references | Kylili, A., Georgali, P.-Z., Christou, P., & Fokaides, P. (2024). An integrated building information modeling (BIM)-based lifecycle-oriented framework for sustainable building design. Construction Innovation, 24(2), 492-514. https://doi.org/10.1108/CI-02-2021-0011 | |
| dc.relation.references | Kymmell, W. (2008). Building Information Modeling: Planning and Managing Construction Projects with 4D CAD and Simulations. McGraw-Hill. | |
| dc.relation.references | Lambertz, M., Theißen, S., Höper, J., & Wimmer, R. (2019). Importance of building services in ecological building assessments. E3S Web of Conferences, 111, 03061. https://doi.org/10.1051/e3sconf/201911103061 | |
| dc.relation.references | Lapinskienė, V., & Motuzienė, V. (2021). Integrated building design technology based on quality function deployment and axiomatic design methods: A case study. Sustainable Cities and Society, 65, 102631. https://doi.org/10.1016/j.scs.2020.102631 | |
| dc.relation.references | Le, A. T. H., Park, K. S., Domingo, N., Rasheed, E., & Mithraratne, N. (2018). Sustainable refurbishment for school buildings: A literature review. International Journal of Building Pathology and Adaptation, IJBPA-01-2018 0009. https://doi.org/10.1108/IJBPA-01-2018-0009 | |
| dc.relation.references | Lee, K., Tae, S., & Shin, S. (2009). Development of a Life Cycle Assessment Program for building (SUSB-LCA) in South Korea. Renewable and Sustainable https://doi.org/10.1016/j.rser.2009.01.002 Energy Reviews, 13(8), 1994-2002. | |
| dc.relation.references | Lee, N., Tae, S., Gong, Y., & Roh, S. (2017). Integrated building life-cycle assessment model to support South Korea’s green building certification system (G-SEED). Renewable and Sustainable Energy Reviews, 76, 43-50. https://doi.org/10.1016/j.rser.2017.03.038 | |
| dc.relation.references | Lee, S., Tae, S., Jang, H., Chae, C. U., & Bok, Y. (2021). Development of Building Information Modeling Template for Environmental Impact Assessment. Sustainability, 13(6), 3092. https://doi.org/10.3390/su13063092 | |
| dc.relation.references | Lee, S., Tae, S., Roh, S., & Kim, T. (2015). Green Template for Life Cycle Assessment of Buildings Based on Building Information Modeling: Focus on Embodied Environmental Impact. Sustainability, 7(12), 16498-16512. https://doi.org/10.3390/su71215830 | |
| dc.relation.references | Lenzen, M. (2000). Errors in Conventional and Input-Output—Based Life—Cycle Inventories. Journal of Industrial Ecology, 4(4), 127-148. https://doi.org/10.1162/10881980052541981 | |
| dc.relation.references | Levasseur, A., Lesage, P., Margni, M., Deschênes, L., & Samson, R. (2010). Considering Time in LCA: Dynamic LCA and Its Application to Global Warming Impact Assessments. Environmental Science & Technology, 44(8), 3169 3174. https://doi.org/10.1021/es9030003 | |
| dc.relation.references | Li, C. Z., Lai, X., Xiao, B., Tam, V. W. Y., Guo, S., & Zhao, Y. (2020). A holistic review on life cycle energy of buildings: An analysis from 2009 to 2019. Renewable and Sustainable Energy Reviews, 134, 110372. https://doi.org/10.1016/j.rser.2020.110372 | |
| dc.relation.references | Li, M., Lu, K., Wang, H., & Wang, S. (2020). Integrating BIM with greenhouse-gas emissions in AEC: A scientometric review. E3S Web of Conferences, 143, 01008. https://doi.org/10.1051/e3sconf/202014301008 | |
| dc.relation.references | Li, Q., Long, R., Chen, H., Chen, F., & Wang, J. (2020). Visualized analysis of global green buildings: Development, barriers and future directions. https://doi.org/10.1016/j.jclepro.2019.118775 Journal of Cleaner Production, 245, 118775. | |
| dc.relation.references | Li, T., Liu, Z.-C., Zhang, H.-C., & Jiang, Q.-H. (2013). Environmental emissions and energy consumptions assessment of a diesel engine from the life cycle perspective. Journal of Cleaner Production, 53, 7-12. https://doi.org/10.1016/j.jclepro.2013.04.034 | |
| dc.relation.references | Li, X., Wu, P., Shen, G. Q., Wang, X., & Teng, Y. (2017). Mapping the knowledge domains of Building Information Modeling (BIM): A bibliometric approach. Automation in Construction, 84, 195-206. https://doi.org/10.1016/j.autcon.2017.09.011 | |
| dc.relation.references | Li, X., Xie, W., Yang, T., Lin, C., & Jim, C. Y. (2023). Carbon emission evaluation of prefabricated concrete composite plates during the building materialization stage. Building and Environment, 232, 110045. https://doi.org/10.1016/j.buildenv.2023.110045 | |
| dc.relation.references | Li, X.-J., Lai, J., Ma, C., & Wang, C. (2021). Using BIM to research carbon footprint during the materialization phase of prefabricated concrete buildings: A China study. Journal of Cleaner Production, 279, 123454. https://doi.org/10.1016/j.jclepro.2020.123454 | |
| dc.relation.references | Li, Y., Wang, Y., Wang, R., Liu, C., & Zhang, Z. (2024). BIBLIOMETRIC REVIEW OF RESEARCH ON GREEN BUILDING ASSESSMENT METHOD BY CITESPACE AND HISTCITE. International Journal of Strategic Property Management, 28(3), 177-193. https://doi.org/10.3846/ijspm.2024.21455 | |
| dc.relation.references | Liang, R., Ma, H., Wang, P., & Zhao, L. (2024). The applications of building information modeling in the life-cycle of green buildings: A comprehensive review. Science and Technology for the Built Environment, 30(8), 932-958. https://doi.org/10.1080/23744731.2024.2351310 | |
| dc.relation.references | Liang, Y., Li, C., Liu, Z., Wang, X., Zeng, F., Yuan, X., & Pan, Y. (2023). Decarbonization potentials of the embodied energy use and operational process in buildings: A review from the life-cycle perspective. Heliyon, 9(10), e20190. https://doi.org/10.1016/j.heliyon.2023.e20190 | |
| dc.relation.references | Lima, M. S. S., Duarte, S., Exenberger, H., Fröch, G., & Flora, M. (2024). Integrating BIM-LCA to Enhance Sustainability Assessments of Constructions. Sustainability, 16(3), 1172. https://doi.org/10.3390/su16031172 | |
| dc.relation.references | Lipsey, M. W., & Wilson, D. B. (2001). Practical Meta-analysis (Vol. 49). Sage Publications. | |
| dc.relation.references | Littell, J. H., Corcoran, J., & Pillai, V. K. (2008). Systematic reviews and meta-analysis. Oxford University Press. | |
| dc.relation.references | Liu, H., Chen, Y., Hu, Y., Wang, Z., & Liu, C. (2023). Current Status and Future Directions of Building Information Modeling for Low-Carbon Buildings. Energies, 17(1), 143. https://doi.org/10.3390/en17010143 | |
| dc.relation.references | Liu, Z., Lu, Y., Shen, M., & Peh, L. C. (2021). Transition from building information modeling (BIM) to integrated digital delivery (IDD) in sustainable building management: A knowledge discovery approach based review. Journal of Cleaner Production, 291, 125223. https://doi.org/10.1016/j.jclepro.2020.125223 | |
| dc.relation.references | Llatas, C. (2024). Case study II: Application of Life Cycle Sustainability Assessment in BIM in early design stages for the selection of the structural system of a residential building in Spain. En Materials Selection for Sustainability in the Built Environment (pp. 381-405). Elsevier. https://doi.org/10.1016/B978-0-323-95122-7.00017-4 | |
| dc.relation.references | Llatas, C., Angulo Fornos, R., Bizcocho, N., Cortés Albalá, I., Falcón Ganfornina, R., Galeana, I., García-Martínez, A., Gómez de Cózar, J. C., López Alonso, S., Meda, P., Mercado Martínez, J. M., Montes, M. V., Periañez Cristobal, R., Quiñones, R., Rojo, T., Rubio Bellido, C., Ruiz Alfonsea, M., & Soust-Verdaguer, B. (2019). Towards a Life Cycle Sustainability Assessment method for the quantification and reduction of impacts of buildings life cycle. IOP Conference Series: Earth and Environmental Science, 323, 012107. https://doi.org/10.1088/1755 1315/323/1/012107 | |
| dc.relation.references | Llatas, C., Quiñones, R., & Bizcocho, N. (2022). Environmental Impact Assessment of Construction Waste Recycling versus Disposal Scenarios Using an LCA-BIM Tool during the Design Stage. Recycling, 7(6), 82. https://doi.org/10.3390/recycling7060082 | |
| dc.relation.references | Llatas, C., Soust-Verdaguer, B., & Passer, A. (2020). Implementing Life Cycle Sustainability Assessment during design stages in Building Information Modelling: From systematic literature review to a methodological approach. Building and Environment, 182, 107164. https://doi.org/10.1016/j.buildenv.2020.107164 | |
| dc.relation.references | Llatas, C., Soust-Verdaguer, B., Torres, L. C., & Cagigas, D. (2024). Application of Knowledge Discovery in Databases (KDD) to environmental, economic, and social indicators used in BIM workflow to support sustainable design. Journal of Building Engineering, 91, 109546. https://doi.org/10.1016/j.jobe.2024.109546 | |
| dc.relation.references | Loh, E., Dawood, N., & Dean, J. (2009). Development of an Optimisation Approach for the Energy Efficient Buildings. Computing in Civil Engineering (2009), 318-327. https://doi.org/10.1061/41052(346)32 | |
| dc.relation.references | Long, W.-J., Tao, J.-L., Lin, C., Gu, Y., Mei, L., Duan, H.-B., & Xing, F. (2019). Rheology and buildability of sustainable cement-based composites containing micro-crystalline cellulose for 3D-printing. Journal of Cleaner Production, 239, 118054. https://doi.org/10.1016/j.jclepro.2019.118054 | |
| dc.relation.references | Lopes Silva, D. A., Nunes, A. O., Piekarski, C. M., da Silva Moris, V. A., de Souza, L. S. M., & Rodrigues, T. O. (2019). Why using different Life Cycle Assessment software tools can generate different results for the same product system? A cause–effect analysis of the problem. Sustainable Production and Consumption, 20, 304-315. https://doi.org/10.1016/j.spc.2019.07.005 | |
| dc.relation.references | Lu, K., Jiang, X., Tam, V. W. Y., Li, M., Wang, H., Xia, B., & Chen, Q. (2019). Development of a Carbon Emissions Analysis Framework Using Building Information Modeling and Life Cycle Assessment for the Construction of Hospital Projects. Sustainability, 11(22), 6274. https://doi.org/10.3390/su11226274 | |
| dc.relation.references | Lu, K., & Wang, H. (2019). Estimation of Building’s Life Cycle Carbon Emissions Based on Life Cycle Assessment and Building Information Modeling: A Case Study of a Hospital Building in China. Journal of Geoscience and Environment Protection, 07(06), 147-165. https://doi.org/10.4236/gep.2019.76013 | |
| dc.relation.references | Lu, Y., Le, V. H., & Song, X. (2017). Beyond Boundaries: A Global Use of Life Cycle Inventories for Construction Materials. Journal of Cleaner Production, 156, 876-887. https://doi.org/10.1016/j.jclepro.2017.04.010 | |
| dc.relation.references | Lu, Y., Wu, Z., Chang, R., & Li, Y. (2017). Building Information Modeling (BIM) for green buildings: A critical review and future directions. Automation in Construction, 83, 134-148. https://doi.org/10.1016/j.autcon.2017.08.024 | |
| dc.relation.references | Ma, L. (2023). Bim-based Life Cycle Assessment of Embodied Energy and Environmental Impacts of High-rise Buildings: A Literature Review. International https://doi.org/10.21022/IJHRB.2023.12.2.163 Journal of High-Rise Buildings, 12(2), 163-168. | |
| dc.relation.references | Ma, L., Azari, R., & Elnimeiri, M. (2024). A Building Information Modeling-Based Life Cycle Assessment of the Embodied Carbon and Environmental Impacts of High-Rise Building Structures: A Case Study. Sustainability, 16(2), 569. https://doi.org/10.3390/su16020569 | |
| dc.relation.references | Mahmoud, M. H., Al Deab, M., & Veall, A. (2024). Proposed guidance for reducing greenhouse gas emissions in Middle Eastern construction. Proceedings of the Institution of Civil Engineers - Civil Engineering, 177(5), 27-36. https://doi.org/10.1680/jcien.23.00155 | |
| dc.relation.references | Manca, M., Prochazkova, Z., Berardi, U., Alfaro, L., & Pich-Aguilera, F. (2020). Building Circular Economy: A Case Study Designed and Built Following a BIM-Based Life Cycle Assessment Approach. XV International Conference on Durability of Building Materials and Components. eBook of Proceedings. XV International Conference on Durability of Building Materials and Components. https://doi.org/10.23967/dbmc.2020.179 | |
| dc.relation.references | Mannan, M., & Al-Ghamdi, S. G. (2023). Life Cycle Environmental Impacts of Water Use in Buildings: A Case Study in Qatar. En N. S. Caetano & M. C. Felgueiras (Eds.), The 9th International Conference on Energy and Environment Research (pp. 113-123). Springer Nature Switzerland. https://doi.org/10.1007/978-3-031-43559 1_11 | |
| dc.relation.references | Marrero, M., Wojtasiewicz, M., Martínez-Rocamora, A., Solís-Guzmán, J., & Alba-Rodríguez, M. D. (2020). BIM-LCA Integration for the Environmental Impact Assessment of the Urbanization Process. Sustainability, 12(10), 4196. https://doi.org/10.3390/su12104196 | |
| dc.relation.references | Martínez-Aires, M. D., López-Alonso, M., & Martínez-Rojas, M. (2018). Building information modeling and safety management: A systematic review. Safety Science, 101, 11-18. https://doi.org/10.1016/j.ssci.2017.08.015 | |
| dc.relation.references | Martínez-Rocamora, A., Rivera-Gómez, C., Galán-Marín, C., & Marrero, M. (2021). Environmental benchmarking of building typologies through BIM-based combinatorial case studies. Automation in Construction, 132, 103980. https://doi.org/10.1016/j.autcon.2021.103980 | |
| dc.relation.references | Marzouk, M., Abdelkader, E. M., & Al-Gahtani, K. (2017). Building information modeling-based model for calculating direct and indirect emissions in construction projects. Journal of Cleaner Production, 152, 351-363. https://doi.org/10.1016/j.jclepro.2017.03.138 | |
| dc.relation.references | Marzouk, M., & Thabet, R. (2023). A BIM-Based Tool for Assessing Sustainability in Buildings Using the Green Pyramid Rating System. Buildings, 13(5), 1274. https://doi.org/10.3390/buildings13051274 | |
| dc.relation.references | Matos, R., Rodrigues, F., Rodrigues, H., & Costa, A. (2021). Building condition assessment supported by Building Information Modelling. Journal https://doi.org/10.1016/j.jobe.2021.102186 of Building Engineering, 38, 102186. | |
| dc.relation.references | Mattern, H., & König, M. (2019). Efficient management of design options for early BIM. En Life-Cycle Analysis and Assessment in Civil Engineering: Towards an Integrated Vision. | |
| dc.relation.references | Mazur, Ł., & Olenchuk, A. (2023). Life Cycle Assessment and Building Information Modeling Integrated Approach: Carbon Footprint of Masonry and Timber-Frame Constructions in Single-Family Houses. Sustainability, 15(21), 15486. https://doi.org/10.3390/su152115486 | |
| dc.relation.references | Means, P., & Guggemos, A. (2015). Framework for Life Cycle Assessment (LCA) Based Environmental Decision Making During the Conceptual Design Phase for Commercial Buildings. Procedia Engineering, 118, 802-812. https://doi.org/10.1016/j.proeng.2015.08.517 | |
| dc.relation.references | Meex, E., Hollberg, A., Knapen, E., Hildebrand, L., & Verbeeck, G. (2018). Requirements for applying LCA-based environmental impact assessment tools in the early stages of building design. Building and Environment, 133, 228-236. https://doi.org/10.1016/j.buildenv.2018.02.016 | |
| dc.relation.references | Mengist, W., Soromessa, T., & Legese, G. (2020). Ecosystem services research in mountainous regions: A systematic literature review on current knowledge and research gaps. Science of The Total Environment, 702, 134581. https://doi.org/10.1016/j.scitotenv.2019.134581 | |
| dc.relation.references | Mercader Moyano, M. del P., Camporeale, P. E., & Cózar-Cózar, E. (2019). Evaluación de impacto ambiental mediante la introducción de indicadores a un modelo BIM de vivienda social. Revista Hábitat Sustentable, 9(2), 78-93. https://doi.org/10.22320/07190700.2019.09.02.07 | |
| dc.relation.references | Mercader-Moyano, P., & Porras-Pereira, P. (Eds.). (2025). Life Cycle Analysis Based on Nanoparticles Applied to the Construction Industry: A Comprehensive Curriculum. Springer Nature Switzerland. https://doi.org/10.1007/978 3-031-79115-4 | |
| dc.relation.references | Miles, M. B., Huberman, A. M., & Saldaña, J. (2014). Qualitative data analysis: A methods sourcebook (Edition 3). Sage. | |
| dc.relation.references | Minunno, R., O’Grady, T., Morrison, G. M., & Gruner, R. L. (2021). Investigating the embodied energy and carbon of buildings: A systematic literature review and meta-analysis of life cycle assessments. Renewable and Sustainable Energy Reviews, 143, 110935. https://doi.org/10.1016/j.rser.2021.110935 | |
| dc.relation.references | Mitera-Kiełbasa, E., & Zima, K. (2024). BIM Policy Trends in Europe: Insights from a Multi-Stage Analysis. Applied Sciences, 14(11), 4363. https://doi.org/10.3390/app14114363 | |
| dc.relation.references | Mohammed, A. B. (2019). Applying BIM to achieve sustainability throughout a building life cycle towards a sustainable BIM model. International Journal https://doi.org/10.1080/15623599.2019.1615755 of Construction Management, 1-18. | |
| dc.relation.references | Mohammed, A. B. (2023). Process Map for Accessing Automatization of Life Cycle Assessment Utilizing Building Information Modeling. Journal of https://doi.org/10.1061/JAEIED.AEENG-1449 Architectural Engineering, 29(3), 04023012. | |
| dc.relation.references | Mohsin, S., Junaid, A., Khan, R., & Safdar, S. (2019). Assessment of Embodied Carbon Footprint of an Educational Building in Pakistan using Building Information Modelling (BIM). | |
| dc.relation.references | Moni, S. M., Mahmud, R., High, K., & Carbajales‐Dale, M. (2020). Life cycle assessment of emerging technologies: A review. Journal of Industrial Ecology, 24(1), 52-63. https://doi.org/10.1111/jiec.12965 | |
| dc.relation.references | Mora, T. D., Bolzonello, E., Peron, F., & Carbonari, A. (2019). Integration of LCA tools in BIM toward a regenerative design. 6. | |
| dc.relation.references | Morsi, D. M. A., Ismaeel, W. S. E., Ehab, A., & Othman, A. A. E. (2022). BIM-based life cycle assessment for different structural system scenarios of a residential building. Ain Shams Engineering Journal, 13(6), 101802. https://doi.org/10.1016/j.asej.2022.101802 | |
| dc.relation.references | Morsi, D. M. A., Ismaeel, W. S. E., & Othman, A. A. E. (2020). APPLYING LCA-BIM INTEGRATION FOR A SUSTAINABLE MANAGEMENT PROCESS. 10. | |
| dc.relation.references | Mostert, C., Sameer, H., Glanz, D., & Bringezu, S. (2021). Climate and resource footprint assessment and visualization of recycled concrete for circular economy. Resources, Conservation and Recycling, 174, 105767. https://doi.org/10.1016/j.resconrec.2021.105767 | |
| dc.relation.references | Mowafy, N., El Zayat, M., & Marzouk, M. (2023). Parametric BIM-based life cycle assessment framework for optimal sustainable design. Journal of Building Engineering, 75, 106898. https://doi.org/10.1016/j.jobe.2023.106898 | |
| dc.relation.references | Müller, M., Zinke, T., & Ummenhofer, T. (2023). Element approach for BIM-based life-cycle modeling of bridges. En F. Biondini & D. M. Frangopol, Life-Cycle of Structures and Infrastructure Systems (1.a ed., pp. 2337-2344). CRC Press. https://doi.org/10.1201/9781003323020-285 | |
| dc.relation.references | Munaro, M. R., Tavares, S. F., & Bragança, L. (2020). Towards circular and more sustainable buildings: A systematic literature review on the circular economy in the built environment. Journal of Cleaner Production, 260, 121134. https://doi.org/10.1016/j.jclepro.2020.121134 | |
| dc.relation.references | Muntean, R., Chițonu, G. C., Radu, D., Cazacu, C. E., & Gălățanu, T. (2020). Approach, understanding, needs and integration of the BIM concept in the Romanian modern society. IOP Conference Series: Materials Science and Engineering, 789, 012043. https://doi.org/10.1088/1757-899X/789/1/012043 | |
| dc.relation.references | Naciones Unidas. (1987). Informe de la Comisión Mundial sobre el Medio Ambiente y el Desarrollo. | |
| dc.relation.references | Naji, A. J., Mahadi, M. I. A., Humaish, W. H., & Markovich, A. S. (2024). Sustainable buildings design strategies in the building sector. E3S Web of Conferences, 533, 04003. https://doi.org/10.1051/e3sconf/202453304003 | |
| dc.relation.references | Najjar, M., Figueiredo, K., Evangelista, A. C. J., Hammad, A. W. A., Tam, V. W. Y., & Haddad, A. (2019). Life cycle assessment methodology integrated with BIM as a decision-making tool at early-stages of building design. | |
| dc.relation.references | Najjar, M., Figueiredo, K., Hammad, A. W. A., & Haddad, A. (2019). Integrated optimization with building information modeling and life cycle assessment for generating energy efficient buildings. Applied Energy, 250, 1366-1382. https://doi.org/10.1016/j.apenergy.2019.05.101 | |
| dc.relation.references | Najjar, M., Figueiredo, K., Palumbo, M., & Haddad, A. (2017). Integration of BIM and LCA: Evaluating the environmental impacts of building materials at an early stage of designing a typical office building. Journal of Building Engineering, 14, 115-126. https://doi.org/10.1016/j.jobe.2017.10.005 | |
| dc.relation.references | Namaki, P., Vegesna, B. S., Bigdellou, S., Chen, R., & Chen, Q. (2024). An Integrated Building Information Modeling and Life-Cycle Assessment Approach to Facilitate Design Decisions on Sustainable Building Projects in Canada. Sustainability, 16(11), 4718. https://doi.org/10.3390/su16114718 | |
| dc.relation.references | Naneva, A. (2022). greenBIM, a BIM-based LCA integration using a circular approach based on the example of the Swiss sustainability standard Minergie-ECO. https://doi.org/10.1051/e3sconf/202234910002 E3S Web of Conferences, 349, 10002. | |
| dc.relation.references | Naneva, A., Bonanomi, M., Hollberg, A., Habert, G., & Hall, D. (2020). Integrated BIM-Based LCA for the Entire Building Process Using an Existing Structure for Cost Estimation in the Swiss Context. Sustainability, 12(9), 3748. https://doi.org/10.3390/su12093748 | |
| dc.relation.references | National Institute of Building Sciences. (2015). National BIM Standard – United States® (NBIMS-USTM), Version 3. National Institute of Building Sciences. | |
| dc.relation.references | Nehasilová, M., Lupíšek, A., Coufalová, P. L., Kupsa, T., Veselka, J., Vlasatá, B., Železná, J., Kunová, P., & Volf, M. (2022). Rapid Environmental Assessment of Buildings: Linking Environmental and Cost Estimating Databases. Sustainability, 14(17), 10928. https://doi.org/10.3390/su141710928 | |
| dc.relation.references | Nguyen, D. T., & Sharmak, W. (2021). BIM-based ontology for sustainability-oriented building construction. 020007. https://doi.org/10.1063/5.0070861 | |
| dc.relation.references | NIBS. (2007). National Building Information Modeling Standard. Version 1—Part 1: Overview, Principles, and Methodologies. | |
| dc.relation.references | Nilsen, M., & Bohne, R. A. (2019). Evaluation of BIM based LCA in early design phase (low LOD) of buildings. IOP Conference Series: Earth and Environmental Science, 323, 012119. https://doi.org/10.1088/1755 1315/323/1/012119 | |
| dc.relation.references | Nizam, R. S., Zhang, C., & Tian, L. (2018). A BIM based tool for assessing embodied energy for buildings. Energy and Buildings, 170, 1-14. https://doi.org/10.1016/j.enbuild.2018.03.067 | |
| dc.relation.references | Nolan, T., & Doyle-Kent, M. (2018). An Investigation into the Role of the Building Structure on Energy Use & CO2 Emissions over the Life Cycle of a Medium-Rise Residential Building. IFAC-PapersOnLine, 51(30), 60-65. https://doi.org/10.1016/j.ifacol.2018.11.246 | |
| dc.relation.references | Nölle, T. (2020). CLiAR A digital tool for the conscious use of resources. IOP Conference Series: Earth and Environmental Science, 588, 032012. https://doi.org/10.1088/1755-1315/588/3/032012 | |
| dc.relation.references | NTC-ISO 14040. (2007). GESTIÓN AMBIENTAL. ANÁLISIS DE CICLO DE VIDA. PRINCIPIOS Y MARCOS DE REFERENCIA. | |
| dc.relation.references | Nwodo, M. N., & Anumba, C. J. (2019). A review of life cycle assessment of buildings using a systematic approach. Building and Environment, 162, 106290. https://doi.org/10.1016/j.buildenv.2019.106290 | |
| dc.relation.references | Obrecht, T. P., Röck, M., Hoxha, E., & Passer, A. (2020). The challenge of integrating Life Cycle Assessment in the building design process – a systematic literature review of BIM-LCA workflows. IOP Conference Series: Earth and Environmental Science, 588, 032024. https://doi.org/10.1088/1755-1315/588/3/032024 | |
| dc.relation.references | Oh, M.-S., & Na, S. (2017). BUILDING INFORMATION MODELLING (BIM) BASED CO2 EMISSIONS ASSESSMENT IN THE EARLY DESIGN STAGE. 15. | |
| dc.relation.references | Omrany, H., Ghaffarianhoseini, A., Chang, R., Ghaffarianhoseini, A., & Pour Rahimian, F. (2023). Applications of Building information modelling in the early design stage of high-rise buildings. Automation in Construction, 152, 104934. https://doi.org/10.1016/j.autcon.2023.104934 | |
| dc.relation.references | Onat, N., Kucukvar, M., Halog, A., & Cloutier, S. (2017). Systems Thinking for Life Cycle Sustainability Assessment: A Review of Recent Developments, Applications, and Future Perspectives. Sustainability, 9(5), 706. https://doi.org/10.3390/su9050706 | |
| dc.relation.references | Onososen, A., & Musonda, I. (2022). Barriers to BIM-Based Life Cycle Sustainability Assessment for Buildings: An Interpretive Structural Modelling Approach. Buildings, 12(3), 324. https://doi.org/10.3390/buildings12030324 | |
| dc.relation.references | Onososen, A., Musonda, I., & Tjebane, M. M. (2022). Drivers of BIM-Based Life Cycle Sustainability Assessment of Buildings: An Interpretive Structural Modelling Approach. Sustainability, 14(17), 11052. https://doi.org/10.3390/su141711052 | |
| dc.relation.references | Oreto, C., Biancardo, S. A., Veropalumbo, R., Viscione, N., Russo, F., Abbondati, F., & Dell’Acqua, G. (2021). BIM LCA Integration Framework for Sustainable Road Pavement Maintenance Practices. International Journal of Transport Development and Integration, 6(1), 1-11. https://doi.org/10.2495/TDI-V6-N1-1-11 | |
| dc.relation.references | Ortiz, O., Castells, F., & Sonnemann, G. (2009). Sustainability in the construction industry: A review of recent developments based on LCA. Construction and Building Materials, 23(1), 28-39. https://doi.org/10.1016/j.conbuildmat.2007.11.012 | |
| dc.relation.references | Østergård, T., Jensen, R. L., & Maagaard, S. E. (2016). Building simulations supporting decision making in early design – A review. Renewable and Sustainable Energy Reviews, 61, 187-201. https://doi.org/10.1016/j.rser.201 | |
| dc.relation.references | Owens, J. W. (1997). Life-Cycle Assessment: Constraints on Moving from Inventory to Impact Assessment. Journal of Industrial Ecology, 1(1), 37-49. https://doi.org/10.1162/jiec.1997.1.1.37 | |
| dc.relation.references | Palumbo, E., Soust-Verdaguer, B., Llatas, C., & Traverso, M. (2020). How to Obtain Accurate Environmental Impacts at Early Design Stages in BIM When Using Environmental Product Declaration. A Method to Support Decision Making. Sustainability, 12(17), 6927. https://doi.org/10.3390/su12176927 | |
| dc.relation.references | Pan Ting, Nemeth Peter, Fan Yee Van, Shao Ling, Yang Zekun, Wang Bohong, & Varbanov Petar Sabev. (2024). The Integration of Building Information Modelling and Life Cycle Assessment: Progress, Challenges, Future Directions. Chemical Engineering Transactions, 114, 409-414. https://doi.org/10.3303/CET24114069 | |
| dc.relation.references | Pan, Y., & Zhang, L. (2023). Integrating BIM and AI for Smart Construction Management: Current Status and Future Directions. Archives of Computational https://doi.org/10.1007/s11831-022-09830-8 Methods in Engineering, 30(2), 1081-1110. | |
| dc.relation.references | Panteli, C., Kylili, A., & Fokaides, P. A. (2020). Building information modelling applications in smart buildings: From design to commissioning and beyond A critical review. Journal of Cleaner Production, 265, 121766. https://doi.org/10.1016/j.jclepro.2020.121766 | |
| dc.relation.references | Panteli, C., Kylili, A., Stasiuliene, L., Seduikyte, L., & Fokaides, P. A. (2018). A framework for building overhang design using Building Information Modeling and Life Cycle Assessment. Journal of Building Engineering, 20, 248 255. https://doi.org/10.1016/j.jobe.2018.07.022 | |
| dc.relation.references | Parece, S., Resende, R., & Rato, V. (2024). A BIM-based tool for embodied carbon assessment using a Construction Classification System. Developments https://doi.org/10.1016/j.dibe.2024.100467 in the Built Environment, 19, 100467. | |
| dc.relation.references | Passer, A., Kreiner, H., & Maydl, P. (2012). Assessment of the environmental performance of buildings: A critical evaluation of the influence of technical building equipment on residential buildings. The International Journal of Life Cycle Assessment, 17(9), 1116-1130. https://doi.org/10.1007/s11367-012-0435-6 | |
| dc.relation.references | Passer, A., Lützkendorf, T., Habert, G., Kromp-Kolb, H., Monsberger, M., Eder, M., & Truger, B. (2020). Sustainable built environment: Transition towards a net zero carbon built environment. The International Journal of Life Cycle Assessment, 25(6), 1160-1167. https://doi.org/10.1007/s11367-020-01754-4 | |
| dc.relation.references | Patel, K., & Ruparathna, R. (2023). Life cycle sustainability assessment of road infrastructure: A building information modeling-(BIM) based approach. International Journal of Construction Management, 23(11), 1837-1846. https://doi.org/10.1080/15623599.2021.2017113 | |
| dc.relation.references | Peng, C. (2016). Calculation of a building’s life cycle carbon emissions based on Ecotect and building information modeling. Journal of Cleaner Production, 112, 453-465. https://doi.org/10.1016/j.jclepro.2015.08.078 | |
| dc.relation.references | Penttil, H., Peter, M., & Elger, D. (2008). EVALUATING VBE AND BIM-FRAMEWORKS: 8. | |
| dc.relation.references | Phillips, R., Troup, L., Fannon, D., & Eckelman, M. J. (2020). Triple bottom line sustainability assessment of window-to wall ratio in US office buildings. Building and Environment, 182, 107057. https://doi.org/10.1016/j.buildenv.2020.107057 | |
| dc.relation.references | Piaia, E., Turillazzi, B., Di Giulio, R., & Sebastian, R. (2024). Advancing the Decarbonization of the Construction Sector: Lifecycle Quality and Performance Assurance of Nearly Zero-Energy Buildings. Sustainability, 16(9), 3687. https://doi.org/10.3390/su16093687 | |
| dc.relation.references | Pichette, G., Blanchet, P., Essoua Essoua, G. G., & Breton, C. (2023). Environmental product declaration (EPD) usage in early building design stages: Review of effects on the environmental life cycle of a multi-residential building. BioResources, 18(4), 8134-8150. https://doi.org/10.15376/biores.18.4.8134-8150 | |
| dc.relation.references | Politi, S., Bergonzoni, G., Cincotta, I. W. J., & Sampietro, F. (2018). LCA Analysis Through a Visual on a BIM Model Case Study. New Frontiers of Construction Management Workshop. | |
| dc.relation.references | Pomponi, F., & Moncaster, A. (2016). Embodied carbon mitigation and reduction in the built environment – What does the evidence say? Journal of https://doi.org/10.1016/j.jenvman.2016.08.036 Environmental Management, 181, 687-700. | |
| dc.relation.references | Pomponi, F., Piroozfar, P. A. E., Southall, R., Ashton, P., & Farr, Eric. R. P. (2016). Energy performance of Double-Skin Façades in temperate climates: A systematic review and meta-analysis. Renewable and Sustainable Energy Reviews, 54, 1525-1536. https://doi.org/10.1016/j.rser.2015.10.075 | |
| dc.relation.references | Potrč Obrecht, T., Röck, M., Hoxha, E., & Passer, A. (2020). BIM and LCA Integration: A Systematic Literature Review. Sustainability, 12(14), 5534. https://doi.org/10.3390/su12145534 | |
| dc.relation.references | Potting, J., & Hauschild, M. Z. (2006). Spatial Differentiation in Life Cycle Impact Assessment: A decade of method development to increase the environmental realism of LCIA. The International Journal of Life Cycle Assessment, 11(S1), 11-13. https://doi.org/10.1065/lca2006.04.005 | |
| dc.relation.references | Prins, M., & Owen, R. (2010). Integrated Design and Delivery Solutions. Architectural Engineering and Design Management, 6(4), 227-231. https://doi.org/10.3763/aedm.2010.IDDS0 | |
| dc.relation.references | R Core Team. (2024). R: A language and environment for statistical computing (Versión 2024) [Software]. R Foundation for Statistical Computing. URL https://www.R-project.org/ | |
| dc.relation.references | Ramaji, I. J., Gultekin-Bicer, P., Crowley, R. W., & Lambert, J. D. (2017). Investigation of Leveraging BIM Standards to Facilitate Sustainability Evaluations from Early Stages of Design. Computing in Civil Engineering 2017, 175 183. https://doi.org/10.1061/9780784480823.022 | |
| dc.relation.references | Ramesh, T., Prakash, R., & Shukla, K. K. (2010). Life cycle energy analysis of buildings: An overview. Energy and Buildings, 42(10), 1592-1600. https://doi.org/10.1016/j.enbuild.2010.05.007 | |
| dc.relation.references | Raouf, A. M., & Al-Ghamdi, S. G. (2019). Effect of R-values changes in the baseline codes: Embodied energy and environmental life cycle impacts https://doi.org/10.1016/j.egyr.2019.09.025 of building envelopes. Energy Reports, 6, 554-560. | |
| dc.relation.references | Raposo, C., Rodrigues, F., & Rodrigues, H. (2019). BIM-based LCA assessment of seismic strengthening solutions for reinforced concrete precast industrial buildings. Innovative Infrastructure Solutions, 4(1), 51. https://doi.org/10.1007/s41062-019-0239-7 | |
| dc.relation.references | Rasmussen, F. N., Malmqvist, T., & Birgisdóttir, H. (2020). Drivers, barriers and development needs for LCA in the Nordic building sector – a survey among professionals. IOP Conference Series: Earth and Environmental Science, 588, 032022. https://doi.org/10.1088/1755-1315/588/3/032022 | |
| dc.relation.references | Reap, J., Roman, F., Duncan, S., & Bras, B. (2008). A survey of unresolved problems in life cycle assessment. Int J Life Cycle Assess, 15 | |
| dc.relation.references | Rebitzer, G., Ekvall, T., Frischknecht, R., Hunkeler, D., Norris, G., Rydberg, T., Schmidt, W.-P., Suh, S., Weidema, B. P., & Pennington, D. W. (2004). Life cycle assessment Part 1: Framework, goal and scope definition, inventory analysis, and applications. https://doi.org/10.1016/j.envint.2003.11.005 Environment International, 30(5), 701-720. | |
| dc.relation.references | Rezaei, F., Bulle, C., & Lesage, P. (2019). Integrating building information modeling and life cycle assessment in the early and detailed building design stages. Building https://doi.org/10.1016/j.buildenv.2019.01.034 | |
| dc.relation.references | Ridley, D. (2012). The literature review (2nd ed). Sage Publications. and Environment, 153, 158-167. | |
| dc.relation.references | Roberts, M., Allen, S., & Coley, D. (2020). Life cycle assessment in the building design process – A systematic literature review. Building and Environment, 185, 107274. https://doi.org/10.1016/j.buildenv.2020.107274 | |
| dc.relation.references | Röck, M., Hollberg, A., Habert, G., & Passer, A. (2018a). LCA and BIM: Integrated Assessment and Visualization of Building Elements’ Embodied Impacts for Design Guidance in Early Stages. Procedia CIRP, 69, 218-223. https://doi.org/10.1016/j.procir.2017.11.087 | |
| dc.relation.references | Röck, M., Hollberg, A., Habert, G., & Passer, A. (2018b). LCA and BIM: Visualization of environmental potentials in building construction at early design stages. Building and Environment, 140, 153-161. https://doi.org/10.1016/j.buildenv.2018.05.006 | |
| dc.relation.references | Roh, S., Tae, S., & Shin, S. (2014). Development of building materials embodied greenhouse gases assessment criteria and system (BEGAS) in the newly revised Korea Green Building Certification System (G-SEED). Renewable and Sustainable Energy Reviews, 35, 410-421. https://doi.org/10.1016/j.rser.2014.04.034 | |
| dc.relation.references | Rosenbaum, R. K. (2018). Overview of Existing LCIA Methods—Annex to Chapter 10. En M. Z. Hauschild, R. K. Rosenbaum, & S. I. Olsen (Eds.), Life Cycle Assessment (pp. 1147-1183). Springer International Publishing. https://doi.org/10.1007/978-3-319-56475-3_40 | |
| dc.relation.references | Rostamiasl, V., & Jrade, A. (2024). Integrating Building Information Modeling (BIM) and Life Cycle Cost Analysis (LCCA) to Evaluate the Economic Benefits of Designing Aging-In-Place Homes at the Conceptual Stage. Sustainability, 16(13), 5743. https://doi.org/10.3390/su16135743 | |
| dc.relation.references | Russell-Smith, S. V., & Lepech, M. D. (2015). Cradle-to-gate sustainable target value design: Integrating life cycle assessment and construction management for buildings. Journal of Cleaner Production, 100, 107-115. https://doi.org/10.1016/j.jclepro.2015.03.044 | |
| dc.relation.references | Sacks, R., Eastman, C. M., Lee, G., & Teicholz, P. (2018). BIM handbook: A guide to building information modeling for owners, managers, designers, engineers and contractors (Third edition). Wiley. | |
| dc.relation.references | Safari, K., & AzariJafari, H. (2021). Challenges and opportunities for integrating BIM and LCA: Methodological choices and framework development. Sustainable Cities and Society, 102728. https://doi.org/10.1016/j.scs.2021.102728 | |
| dc.relation.references | Sajid, Z. W., Khan, S. A., Hussain, F., Ullah, F., Khushnood, R. A., & Soliman, N. (2024). Assessing economic and environmental performance of infill materials through BIM: A life cycle approach. Smart and Sustainable Built Environment. https://doi.org/10.1108/SASBE-11-2023-0341 | |
| dc.relation.references | Saldaña, J. (2013). The coding manual for qualitative researchers (2nd ed). SAGE. | |
| dc.relation.references | Salehabadi, Z. M., & Ruparathna, R. (2022). User-centric sustainability assessment of single family detached homes (SFDH): A BIM-based methodological framework. Journal of Building Engineering, 50, 104139. https://doi.org/10.1016/j.jobe.2022.104139 | |
| dc.relation.references | Sameer, H., Behem, G., Mostert, C., & Bringezu, S. (2022). Comparative Analysis of Resource and Climate Footprints for Different Heating Systems in Building Information Modeling. Buildings, 12(11), 1824. https://doi.org/10.3390/buildings12111824 | |
| dc.relation.references | Sameer, H., & Bringezu, S. (2021). Building information modelling application of material, water, and climate footprint analysis. Building Research & Information, 1-20. https://doi.org/10.1080/09613218.2020.1864266 | |
| dc.relation.references | Sameer, H., Mostert, C., & Bringezu, S. (2020). Product Resource and Climate Footprint Analysis during Architectural Design in BIM. IOP Conference Series: Earth and Environmental Science, 588, 052022. https://doi.org/10.1088/1755-1315/588/5/052022 | |
| dc.relation.references | Samniang, W., Panuwatwanich, K., Tangtermsirikul, S., & Papong, S. (2023). BIM-LCA Integration for Carbon Emission Assessment in Construction Industry: Systematic Review and Research Opportunities. | |
| dc.relation.references | Sampaio, A. Z., Constantino, G. B., & Almeida, N. M. (2022). 8D BIM Model in Urban Rehabilitation Projects: Enhanced Occupational Safety for Temporary Construction Works. Applied Sciences, 12(20), 10577. https://doi.org/10.3390/app122010577 | |
| dc.relation.references | Sanchez, B., Rausch, C., & Haas, C. (2019). “Deconstruction programming for adaptive reuse of buildings”. Automation in Construction, 107, 102921. https://doi.org/10.1016/j.autcon.2019.102921 | |
| dc.relation.references | Sanchez, B., Rausch, C., Haas, C., & Saari, R. (2020). A selective disassembly multi-objective optimization approach for adaptive reuse of building components. Resources, Conservation and Recycling, 154, 104605. https://doi.org/10.1016/j.resconrec.2019.104605 | |
| dc.relation.references | Sánchez-Meca, J. (2010). Cómo realizar una revisión sistemática y un meta-análisis. 11. | |
| dc.relation.references | Sandén, B. A., & Karlström, M. (2007). Positive and negative feedback in consequential life-cycle assessment. Journal of Cleaner Production, 15(15), 1469-1481. https://doi.org/10.1016/j.jclepro.2006.03.005 | |
| dc.relation.references | Santos, R., Aguiar Costa, A., Silvestre, J. D., & Pyl, L. (2020). Development of a BIM-based Environmental and Economic Life Cycle Assessment tool. Journal https://doi.org/10.1016/j.jclepro.2020.121705 of Cleaner Production, 265, 121705. | |
| dc.relation.references | Santos, R., & Costa, A. A. (2016). BIM in LCA/LCEA Analysis: Comparative analysis of Multi-family House and Single family. CIB World Building Congress 2016, 13. | |
| dc.relation.references | Santos, R., & Costa, A. A. (2018). Information integration and interoperability for BIM-based life-cycle assessment. En Integrating Information In Built Environments. From concept to practice. | |
| dc.relation.references | Santos, R., Costa, A. A., & Grilo, A. (2017). Bibliometric analysis and review of Building Information Modelling literature published between 2005 and 2015. https://doi.org/10.1016/j.autcon.2017.03.005 Automation in Construction, 80, 118-136. | |
| dc.relation.references | Santos, R., Costa, A. A., Silvestre, J. D., & Pyl, L. (2019a). Informetric analysis and review of literature on the role of BIM in sustainable construction. https://doi.org/10.1016/j.autcon.2019.02.022 Automation in Construction, 103, 221-234. | |
| dc.relation.references | Santos, R., Costa, A. A., Silvestre, J. D., & Pyl, L. (2019b). Integration of LCA and LCC analysis within a BIM-based environment. Automation in Construction, 103, 127-149. https://doi.org/10.1016/j.autcon.2019.02.011 | |
| dc.relation.references | Santos, R., Costa, A. A., Silvestre, J. D., Vandenbergh, T., & Pyl, L. (2020). BIM-based life cycle assessment and life cycle costing of an office building in Western Europe. Building and Environment, 169, 106568. https://doi.org/10.1016/j.buildenv.2019.106568 | |
| dc.relation.references | Sarkar, D., Bapat, H., Bhattacharjee, B., & Jha, B. (2024). Automation and optimization in daylight analysis and life cycle assessment for automated daylight monitoring device for a metro rail station box in Ahmedabad, India. International Journal of Construction Management, 1-15. https://doi.org/10.1080/15623599.2024.2306015 | |
| dc.relation.references | Sartori, T., & Calmon, J. L. (2019). Analysis of the impacts of retrofit actions on the life cycle energy consumption of typical neighbourhood dwellings. https://doi.org/10.1016/j.jobe.2018.10.009 Journal of Building Engineering, 21, 158-172. | |
| dc.relation.references | Sartori, T., Drogemuller, R., Omrani, S., & Lamari, F. (2021). A schematic framework for Life Cycle Assessment (LCA) and Green Building Rating System (GBRS). Journal of Building Engineering, 38, 102180. https://doi.org/10.1016/j.jobe.2021.102180 | |
| dc.relation.references | Schneider-Marin, P., Stocker, T., Abele, O., Margesin, M., Staudt, J., Abualdenien, J., & Lang, W. (2022). EarlyData knowledge base for material decisions in building design. Advanced Engineering Informatics, 54, 101769. https://doi.org/10.1016/j.aei.2022.101769 | |
| dc.relation.references | Schultz, J., Ku, K., Gindlesparger, M., & Doerfler, J. (2016). A benchmark study of BIM-based whole-building life-cycle assessment tools and processes. International Journal of Sustainable Building Technology and Urban Development, 7(3-4), 219-229. https://doi.org/10.1080/2093761X.2017.1302839 | |
| dc.relation.references | Schumacher, R., Theißen, S., Höper, J., Drzymalla, J., Lambertz, M., Hollberg, A., Forth, K., Schneider-Marin, P., Wimmer, R., Bahlau, S., & Meins-Becker, A. (2022). Analysis of current practice and future potentials of LCA in a BIM-based design process in Germany. E3S Web of Conferences, 349, 10004. https://doi.org/10.1051/e3sconf/202234910004 | |
| dc.relation.references | Schwartz, Y., Eleftheriadis, S., Raslan, R., & Mumovic, D. (2016). Semantically Enriched BIM Life Cycle Assessment to Enhance Buildings’ Environmental Performance. CIBSE Technical Symposium, 15. | |
| dc.relation.references | Seo, S., Tucker, S., & Newton, P. (2007). Automated Material Selection and Environmental Assessment in the Context of 3D Building Modelling. Journal of Green Building, 2(2), 51-61. https://doi.org/10.3992/jgb.2.2.51 | |
| dc.relation.references | Seppälä, J., Basson, L., & Norris, G. A. (2001). Decision Analysis Frameworks for Life-Cycle Impact Assessment. Journal of Industrial Ecology, 5(4), 45-68. https://doi.org/10.1162/10881980160084033 | |
| dc.relation.references | Seyis, S. (2020). Mixed method review for integrating building information modeling and life-cycle assessments. Building and Environment, 173, 106703. https://doi.org/10.1016/j.buildenv.2020.106703 | |
| dc.relation.references | Shadram, F., Johansson, T. D., Lu, W., Schade, J., & Olofsson, T. (2016). An integrated BIM-based framework for minimizing embodied energy during building design. Energy and Buildings, 128, 592-604. https://doi.org/10.1016/j.enbuild.2016.07.007 | |
| dc.relation.references | Shadram, F., Lu, W., & Olofsson, T. (2017). Assessment of the Energy Use and CO2 Emissions from a Construction Site: An Integrated BIM-DES-LCA https://doi.org/10.1061/9780784480274.062 Framework. ICCREM 2016, 518-526. | |
| dc.relation.references | Shadram, F., Mukkavaara, J., Schade, J., Sandberg, M., & Olofsson, T. (2017). A BIM-Based Method for Analyzing the Trade-Off between Embodied and https://doi.org/10.1061/9780784481066.006 Operational Energy. ICCREM 2017, 59-70. | |
| dc.relation.references | Shafiq, N., Nurrudin, Muhd. F., Gardezi, S. S. S., & Kamaruzzaman, A. B. (2015). Carbon footprint assessment of a typical low rise office building in Malaysia using building information modelling (BIM). International Journal of Sustainable Building Technology https://doi.org/10.1080/2093761X.2015.1057876 and Urban Development, 6(3), 157-172. | |
| dc.relation.references | Sharif, S. A., & Hammad, A. (2019). Simulation-Based Multi-Objective Optimization of institutional building renovation considering energy consumption, Life-Cycle Cost and Life-Cycle Assessment. Journal of Building Engineering, 21, 429-445. https://doi.org/10.1016/j.jobe.2018.11.006 | |
| dc.relation.references | Sharma, S., & Singh, A. (2023). Embodied energy assessment: A comprehensive review of methods and software tools. Environment, Development and Sustainability. https://doi.org/10.1007/s10668-023-04015-0 | |
| dc.relation.references | Shibata, N., Sierra, F., & Hagras, A. (2023). Integration of LCA and LCCA through BIM for optimized decision-making when switching from gas to electricity services in dwellings. Energy and Buildings, 288, 113000. https://doi.org/10.1016/j.enbuild.2023.113000 | |
| dc.relation.references | Shin, Y., & Cho, K. (2015). BIM Application to Select Appropriate Design Alternative with Consideration of LCA and LCCA. Mathematical Problems in Engineering, 2015, 1-14. https://doi.org/10.1155/2015/281640 | |
| dc.relation.references | Shrivastava, S., & Chini, A. (2012). Using Building Information Modeling to Assess the Initial Embodied Energy of a Building. International Journal of https://doi.org/10.1080/15623599.2012.10773184 Construction Management, 12(1), 51-63. | |
| dc.relation.references | Sibenik, G., & Kovacic, I. (2018, julio 22). Proposal for a Discipline-Specific Open Exchange Framework. 34th International Symposium on Automation and Robotics in Construction, Taipei, Taiwan. https://doi.org/10.22260/ISARC2018/0078 | |
| dc.relation.references | Siluo, Y., & Qingli, Y. (2017). Are Scientometrics, Informetrics, and Bibliometrics different? 13. | |
| dc.relation.references | Silver, M. S., Markus, M. L., & Beath, C. M. (1995). The Information Technology Interaction Model: A Foundation for the MBA Core Course. MIS Quarterly, 19(3), 361. https://doi.org/10.2307/249600 | |
| dc.relation.references | Singh, V., Gu, N., & Wang, X. (2011). A theoretical framework of a BIM-based multi-disciplinary collaboration platform. Automation in Construction, 20(2), 134-144. https://doi.org/10.1016/j.autcon.2010.09.011 | |
| dc.relation.references | Sinoh, S. S., Ibrahim, Z., & Ahmad, A. D. B. (2024). Building information modelling (BIM) application at early design stages with consideration of LCA and LCCA. 030002. https://doi.org/10.1063/5.0180604 | |
| dc.relation.references | Skarvelis-Kazakos, S., Cipcigan, L. M., & Jenkins, N. (2009). Micro-Generation for 2050: Life-Cycle Carbon Footprint of Micro-Generation Sources. 6. | |
| dc.relation.references | Slobodchikov, R., Lohne Bakke, K., Ragnar Svennevig, P., & O’Born, R. (2019). Implementing climate impacts in road infrastructure in the design phase by combining BIM with LCA. IOP Conference Series: Earth and Environmental Science, 323, 012089. https://doi.org/10.1088/1755-1315/323/1/012089 | |
| dc.relation.references | Song, X., Carlsson, C., Kiilsgaard, R., Bendz, D., & Kennedy, H. (2020). Life Cycle Assessment of Geotechnical Works in Building Construction: A Review and Recommendations. Sustainability, 12(20), 8442. https://doi.org/10.3390/su12208442 | |
| dc.relation.references | Soust-Verdaguer, B., Bernardino Galeana, I., Llatas, C., Montes, M. V., Hoxha, E., & Passer, A. (2022). How to conduct consistent environmental, economic, and social assessment during the building design process. A BIM-based Life Cycle Sustainability Assessment method. Journal of Building Engineering, 45, 103516. https://doi.org/10.1016/j.jobe.2021.103516 | |
| dc.relation.references | Soust-Verdaguer, B., Castro, L., Fernández Gálvez, M. D., Gutiérrez Moreno, J. A., Cagigas-Muñoz, D., Palumbo, E., & Llatas, C. (2024). Measuring the correlation between carbon embodied emissions, economic and social impacts of building elements in Spain. IOP Conference Series: Earth and Environmental Science, 1363(1), 012018. https://doi.org/10.1088/1755-1315/1363/1/012018 | |
| dc.relation.references | Soust-Verdaguer, B., García Martínez, A., Llatas, C., Gómez de Cózar, J. C., Allacker, K., Trigaux, D., Alsema, E., Berg, B., Dowdell, D., Debacker, W., Frischknecht, R., Ramseier, L., Veselka, J., Volf, M., Hajek, P., Lupíšek, A., Malik, Z., Habert, G., Hollberg, A., … Passer, A. (2020). Implications of using systematic decomposition structures to organize building LCA information: A comparative analysis of national standards and guidelines- IEA EBC ANNEX 72. IOP Conference Series: Earth and Environmental Science, 588, 022008. https://doi.org/10.1088/1755-1315/588/2/022008 | |
| dc.relation.references | Soust-Verdaguer, B., Gutiérrez, J. A., & Llatas, C. (2023). Development of a Plug-In to Support Sustainability Assessment in the Decision-Making of a Building Envelope Refurbishment. Buildings, 13(6), 1472. https://doi.org/10.3390/buildings13061472 | |
| dc.relation.references | Soust-Verdaguer, B., Gutiérrez Moreno, J. A., Cagigas, D., Hoxha, E., & Llatas, C. (2024). Supporting sustainability assessment of building element materials using a BIM-plug-in for multi-criteria decision-making. Journal of Building Engineering, 97, 110818. https://doi.org/10.1016/j.jobe.2024.110818 | |
| dc.relation.references | Soust-Verdaguer, B., Gutiérrez Moreno, J. A., & Llatas, C. (2023). Utilization of an Automatic Tool for Building Material Selection by Integrating Life Cycle Sustainability Assessment in the Early Design Stages in BIM. Sustainability, 15(3), 2274. https://doi.org/10.3390/su15032274 | |
| dc.relation.references | Soust-Verdaguer, B., Llatas, C., & Ayala Carmona, A. (2022). A workflow to integrate operational and embodied aspects when implementing Life Cycle Sustainability Assessment in Building Information Modelling. E3S Web of Conferences, 349, 10001. https://doi.org/10.1051/e3sconf/202234910001 | |
| dc.relation.references | Soust-Verdaguer, B., Llatas, C., & García-Martínez, A. (2017). Critical review of bim-based LCA method to buildings. Energy and Buildings, 136, 110-120. https://doi.org/10.1016/j.enbuild.2016.12.009 | |
| dc.relation.references | Soust-Verdaguer, B., Llatas, C., García-Martínez, A., & Gómez de Cózar, J. C. (2018). BIM-Based LCA Method to Analyze Envelope Alternatives of Single-Family Houses: Case Study in Uruguay. Journal of Architectural Engineering, 24(3), 05018002. https://doi.org/10.1061/(ASCE)AE.1943-5568.0000303 | |
| dc.relation.references | Soust-Verdaguer, B., Llatas, C., & Moya, L. (2020). Comparative BIM-based Life Cycle Assessment of Uruguayan timber and concrete-masonry single-family houses in design stage. Journal of Cleaner Production, 277, 121958. https://doi.org/10.1016/j.jclepro.2020.121958 | |
| dc.relation.references | Sözer, H., & Sözen, H. (2019). Energy saving, global warming and waste recovery potential of retrofitting process for a district. Journal of Cleaner Production, 238, 117915. https://doi.org/10.1016/j.jclepro.2019.117915 | |
| dc.relation.references | Sözer, H., & Sözen, H. (2020). Waste capacity and its environmental impact of a residential district during its life cycle. Energy Reports, 6, 286-296. https://doi.org/10.1016/j.egyr.2020.01.008 | |
| dc.relation.references | Sözer, H., Sözen, H., & Utkucu, D. (2020). Waste Potential of a Building Through Gate-to-Grave Approach Based on Life Cycle Assessment (LCA). International Journal of Sustainable Development and Planning, 15(2), 165-171. https://doi.org/10.18280/ijsdp.150206 | |
| dc.relation.references | Stadel, A., Eboli, J., Ryberg, A., Mitchell, J., & Spatari, S. (2011). Intelligent Sustainable Design: Integration of Carbon Accounting and Building Information Modeling. Journal of Professional Issues in Engineering Education and Practice, 137(2), 51-54. https://doi.org/10.1061/(ASCE)EI.1943-5541.0000053 | |
| dc.relation.references | Stevanovic, M., Allacker, K., & Vermeulen, S. (2019). Development of an Approach to Assess the Life Cycle Environmental Impacts and Costs of General Hospitals through the Analysis of a Belgian Case. Sustainability, 11(3), 856. https://doi.org/10.3390/su11030856 | |
| dc.relation.references | Stone, J., Gurunathan, U., Glass, K., Munn, Z., Tugwell, P., & Doi, S. A. R. (2019). Stratification by quality induced selection bias in a meta-analysis of clinical trials. Journal of Clinical Epidemiology, 107, 51-59. https://doi.org/10.1016/j.jclinepi.2018.11.015 | |
| dc.relation.references | Strauss, A. L., & Corbin, J. M. (2003). Basics of qualitative research: Techniques and procedures for developing grounded theory (2. ed., [Nachdr.]). Sage Publ. | |
| dc.relation.references | Su, S., Wang, Q., Han, L., Hong, J., & Liu, Z. (2020). BIM-DLCA: An integrated dynamic environmental impact assessment model for buildings. https://doi.org/10.1016/j.buildenv.2020.107218 Building and Environment, 183, 107218. | |
| dc.relation.references | Succar, B. (2009). Building information modelling framework: A research and delivery foundation for industry stakeholders. Automation in Construction, 18(3), 357-375. https://doi.org/10.1016/j.autcon.2008.10.003 | |
| dc.relation.references | Sugiyama, G. T., Rodrigues, M. F., & Rodrigues, H. (2024). Environmental impacts and BIM: A Portuguese heritage case study. International Journal of Building Pathology and Adaptation. https://doi.org/10.1108/IJBPA-10-2023 0160 | |
| dc.relation.references | Suh, S., Lenzen, M., Treloar, G. J., Hondo, H., Horvath, A., Huppes, G., Jolliet, O., Klann, U., Krewitt, W., Moriguchi, Y., Munksgaard, J., & Norris, G. (2004). System Boundary Selection in Life-Cycle Inventories Using Hybrid Approaches. Environmental Science & Technology, 38(3), 657-664. https://doi.org/10.1021/es0263745 | |
| dc.relation.references | Sun, H., & Park, Y. (2020). CO2 Emission Calculation Method during Construction Process for Developing BIM-Based Performance Evaluation System. Applied Sciences, 10(16), 5587. https://doi.org/10.3390/app10165587 | |
| dc.relation.references | Sutherland, I. E. (1963). Sketchpad: A man—Machine graphical cammunication system. AFIPS Spring Joint Computer Conference, 329-346. | |
| dc.relation.references | Szalay, Z., Szagri, D., Bihari, Á., Nagy, B., Kiss, B., Horváth, M., & Medgyasszay, P. (2022). Development of a life cycle net zero carbon compact house https://doi.org/10.1016/j.egyr.2022.09.197 concept. Energy Reports, 8, 12987-13013. | |
| dc.relation.references | Taher, A. H., & Elbeltagi, E. E. (2023). Integrating building information modeling with value engineering to facilitate the selection of building design alternatives considering sustainability. International Journal of Construction Management, 23(11), 1886-1901. https://doi.org/10.1080/15623599.2021.2021465 | |
| dc.relation.references | Tam, V. Wy., Zhou, Y., Illankoon, C., & Le, K. N. (2022). A critical review on BIM and LCA integration using the ISO 14040 framework. Building and Environment, 213, 108865. https://doi.org/10.1016/j.buildenv.2022.108865 | |
| dc.relation.references | Tam, V. Wy., Zhou, Y., Shen, L., & Le, K. N. (2023). Optimal BIM and LCA integration approach for embodied environmental impact assessment. https://doi.org/10.1016/j.jclepro.2022.135605 Journal of Cleaner Production, 385, 135605. | |
| dc.relation.references | Tang, S., Shelden, D. R., Eastman, C. M., Pishdad-Bozorgi, P., & Gao, X. (2019). A review of building information modeling (BIM) and the internet of things (IoT) devices integration: Present status and future trends. Automation in Construction, 101, 127-139. https://doi.org/10.1016/j.autcon.2019.01.020 | |
| dc.relation.references | Taylor, J., Liu, Y., Lin, B., Burman, E., Hong, S.-M., Yu, J., Wang, Z., Mumovic, D., Shrubsole, C., Vermeer, D., & Davies, M. (2018). Towards a framework to evaluate the ‘total’ performance of buildings. Building Services Engineering Research and Technology, 39(5), 609-631. https://doi.org/10.1177/0143624418762662 | |
| dc.relation.references | Tchouanguem Djuedja, J. F., Abanda, F. H., Kamsu-Foguem, B., Pauwels, P., Magniont, C., & Karray, M. H. (2021). An integrated Linked Building Data system: AEC industry case. Advances in Engineering Software, 152, 102930. https://doi.org/10.1016/j.advengsoft.2020.102930 | |
| dc.relation.references | Teng, Y., Li, K., Pan, W., & Ng, T. (2018). Reducing building life cycle carbon emissions through prefabrication: Evidence from and gaps in empirical studies. https://doi.org/10.1016/j.buildenv.2018.01.026 Building and Environment, 132, 125-136. | |
| dc.relation.references | Teng, Y., Xu, J., Pan, W., & Zhang, Y. (2022). A systematic review of the integration of building information modeling into life cycle assessment. Building and Environment, 221, 109260. https://doi.org/10.1016/j.buildenv.2022.109260 | |
| dc.relation.references | Theißen, S., Höper, J., Drzymalla, J., Wimmer, R., Markova, S., Meins-Becker, A., & Lambertz, M. (2020). Using Open BIM and IFC to Enable a Comprehensive Consideration of Building Services within a Whole-Building LCA. Sustainability, 12(14), 5644. https://doi.org/10.3390/su12145644 | |
| dc.relation.references | Theißen, S., Höper, J., Lambertz, M., Hollberg, A., König, H., & Hollberg, P. (2022). Concept for combining LCA and hazardous building material assessment for decision support using BIM. IOP Conference Series: Earth and Environmental Science, 1078(1), 012101. https://doi.org/10.1088/1755-1315/1078/1/012101 | |
| dc.relation.references | Theißen, S., Höper, J., Wimmer, R., Meins-Becker, A., & Lambertz, M. (2019). Suggestions for the Technical Integration of Life Cycle Assessment Data Sets of ÖKOBAUDAT into Building Information Modeling and Industry Foundation Classes. En Progress in Life Cycle Assessment 2019. | |
| dc.relation.references | Theißen, S., Höper, J., Wimmer, R., Zibell, M., Meins-Becker, A., Rössig, S., Goitowski, S., & Lambertz, M. (2020). BIM integrated automation of whole building life cycle assessment using German LCA data base ÖKOBAUDAT and Industry Foundation Classes. IOP Conference Series: Earth and Environmental Science, 588, 032025. https://doi.org/10.1088/1755-1315/588/3/032025 | |
| dc.relation.references | Tirella, V., Fabbricatore, C., Carpino, C., Arcuri, N., & Barreca, F. (2023). Configuration Optimization for Sustainable Temporary Houses Employing https://doi.org/10.3390/buildings13112728 BIM Procedure. Buildings, 13(11), 2728. | |
| dc.relation.references | Toroxel, J. L., & Silva, S. M. (2024). A Review of Passive Solar Heating and Cooling Technologies Based on Bioclimatic and Vernacular Architecture. Energies, 17(5), 1006. https://doi.org/10.3390/en17051006 | |
| dc.relation.references | Trusty, W. B., & Meil, J. K. (2001). The U.S. life cycle inventory database project: A progress report. Journal of Advanced Science, 13(3), 195-198. https://doi.org/10.2978/jsas.13.195 | |
| dc.relation.references | Tsikos, M., & Negengahl, K. (2017). Sustainable Design with Respect to LCA Using Parametric Design and BIM Tools. World Sustainable Built Environment Conference 2017. | |
| dc.relation.references | Tushar, Q., Bhuiyan, M. A., Zhang, G., & Maqsood, T. (2021). An integrated approach of BIM-enabled LCA and energy simulation: The optimized solution towards sustainable development. Journal of Cleaner Production, 289, 125622. https://doi.org/10.1016/j.jclepro.2020.125622 | |
| dc.relation.references | Tushar, Q., Zhang, G., Bhuiyan, M. A., Navaratnam, S., Giustozzi, F., & Hou, L. (2022). Retrofit of Building Façade Using Precast Sandwich Panel: An Integrated Thermal and Environmental Assessment on BIM-Based LCA. Buildings, 12(12), 2098. https://doi.org/10.3390/buildings12122098 | |
| dc.relation.references | Ullah, H., Zhang, H., Huang, B., & Gong, Y. (2024). BIM-Based Digital Construction Strategies to Evaluate Carbon Emissions in Green Prefabricated Buildings. Buildings, 14(6), 1689. https://doi.org/10.3390/buildings14061689 | |
| dc.relation.references | UN Environment Programme. (2025). Global Status Report for Buildings and Construction 2024-2025: Key Messages. 2. | |
| dc.relation.references | United Nations Environment Programme (UNEP). (2024). We are all in this together—Annual Report. https://wedocs.unep.org/20.500.11822/47082 | |
| dc.relation.references | Van Gulck, L., Van de Putte, S., Delghust, M., Van Den Bossche, N., & Steeman, M. (2020). Environmental and financial assessment of façade renovations designed for change: Developing optimal scenarios for apartment buildings in Flanders. Building and Environment, 183, 107178. https://doi.org/10.1016/j.buildenv.2020.107178 | |
| dc.relation.references | van Nederveen, G. A., & Tolman, F. P. (1992). Modelling multiple views on buildings. Automation in Construction, 1(3), 215-224. https://doi.org/10.1016/0926-5805(92)90014-B | |
| dc.relation.references | Vardan, V., & Prasad, R. (2019). Developing a Strategic Model to Improve the Reuse of Construction Material by Integrating CBM and BIM. | |
| dc.relation.references | Veerendra, G. T. N., Dey, S., Manoj, A. V. P., & Kumaravel, B. (2022). Life cycle assessment for a suburban building located within the vicinity using Revit Architecture. Journal of Building Pathology and Rehabilitation, 7(1), 56. https://doi.org/10.1007/s41024-022-00199-6 | |
| dc.relation.references | Venkatraj, V., Dixit, M. K., Yan, W., & Lavy, S. (2020). Evaluating the impact of operating energy reduction measures on embodied energy. Energy and Buildings, 226, 110340. https://doi.org/10.1016/j.enbuild.2020.110340 | |
| dc.relation.references | Veselka, J., Růžička, J., Lupíšek, A., Hájek, P., Mančík, Š., Žd’ára, V., & Široký, M. (2019). Connecting BIM and LCA: The Case Study of an Experimental Residential Building. IOP Conference Series: Earth and Environmental Science, 323, 012106. https://doi.org/10.1088/1755-1315/323/1/012106 | |
| dc.relation.references | Vilas-Boas, J., Mirnoori, V., Razy, A., & Silva, A. (2019). Outlining a New Collaborative Business Model as a Result of the Green Building Information Modelling Impact in the AEC Supply Chain. En L. M. Camarinha-Matos, H. Afsarmanesh, & D. Antonelli (Eds.), Collaborative Networks and Digital Transformation (Vol. 568, pp. 405 417). Springer International Publishing. https://doi.org/10.1007/978-3-030-28464-0_35 | |
| dc.relation.references | Viscuso, S., Monticelli, C., Ahmadnia, A., & Zanelli, A. (2022). Integration of life cycle assessment and life cycle costing within a BIM-based environment. https://doi.org/10.3389/frsus.2022.1002257 Frontiers in Sustainability, 3, 1002257. | |
| dc.relation.references | Vitiello, U., Ciotta, V., Salzano, A., Asprone, D., Manfredi, G., & Cosenza, E. (2019). BIM-based approach for the cost optimization of seismic retrofit strategies on existing buildings. Automation in Construction, 98, 90-101. https://doi.org/10.1016/j.autcon.2018.10.023 | |
| dc.relation.references | Volk, R., Stengel, J., & Schultmann, F. (2014). Building Information Modeling (BIM) for existing buildings—Literature review and future needs. Automation in Construction, 38, 109-127. https://doi.org/10.1016/j.autcon.2013.10.023 | |
| dc.relation.references | Waly, A. F., & Thabet, W. Y. (2002). A Virtual Construction Environment for preconstruction planning. Automation in Construction, 12(2), 139-154. https://doi.org/10.1016/S0926-5805(02)00047-X | |
| dc.relation.references | Wang, E., Shen, Z., & Barryman, C. (2011). A Building LCA Case Study Using Autodesk Ecotect and BIM Model. 10. | |
| dc.relation.references | Wang, H. (2017). Application Research of BIM in Environment Assessment of Full Life Cycle for Construction Projects. 2017 International Conference on Smart Grid and Electrical Automation (ICSGEA), 652-655. https://doi.org/10.1109/ICSGEA.2017.98 | |
| dc.relation.references | Wang, H., Pan, Y., & Luo, X. (2019). Integration of BIM and GIS in sustainable built environment: A review and bibliometric analysis. Automation in Construction, 103, 41-52. https://doi.org/10.1016/j.autcon.2019.03.005 | |
| dc.relation.references | Wang, J., Wu, H., Duan, H., Zillante, G., Zuo, J., & Yuan, H. (2018). Combining life cycle assessment and Building Information Modelling to account for carbon emission of building demolition waste: A case study. Journal of Cleaner Production, 172, 3154-3166. https://doi.org/10.1016/j.jclepro.2017.11.087 | |
| dc.relation.references | Wastiels, L., & Decuypere, R. (2019). Identification and comparison of LCA-BIM integration strategies. IOP Conference Series: Earth and Environmental Science, 323, 012101. https://doi.org/10.1088/1755-1315/323/1/012101 | |
| dc.relation.references | Węglarz, A., & Pierzchalski, M. (2018). Comparing construction technologies of single family housing with regard of minimizing embodied energy and embodied carbon. | |
| dc.relation.references | Wei, C.-C., Hsiang, C.-C., & Shan, T.-C. (2014, julio 8). Decision Support Model with Life Cycle Assessment for Building in Design Phase. 31st International Symposium on Automation and Robotics in Construction, Sydney, Australia. https://doi.org/10.22260/ISARC2014/0132 | |
| dc.relation.references | Weidema, P. (1993). Market aspects in product life cycle inventory methodology. Journal of Cleaner Production, 1(3-4), 161-166. https://doi.org/10.1016/0959-6526(93)90007-X | |
| dc.relation.references | Wen, Q.-J., Ren, Z.-J., Lu, H., & Wu, J.-F. (2021). The progress and trend of BIM research: A bibliometrics-based visualization analysis. Automation in Construction, 124, 103558. https://doi.org/10.1016/j.autcon.2021.103558 | |
| dc.relation.references | Wernet, G., Bauer, C., Steubing, B., Reinhard, J., Moreno-Ruiz, E., & Weidema, B. (2016). The ecoinvent database version 3 (part I): Overview and methodology. The International Journal of Life Cycle Assessment, 21(9), 1218-1230. https://doi.org/10.1007/s11367-016-1087-8 | |
| dc.relation.references | Whitehead, B., Andrews, D., & Shah, A. (2015). The life cycle assessment of a UK data centre. The International Journal of Life Cycle Assessment, 20(3), 332-349. https://doi.org/10.1007/s11367-014-0838-7 | |
| dc.relation.references | Wiberg, A. H., Løvhaug, S., Mathisen, M., Tschoerner, B., Resch, E., Erdt, M., & Prasolova-Førland, E. (2019). Visualisation of KPIs in zero emission neighbourhoods for improved stakeholder participation using Virtual Reality. IOP Conference Series: Earth and Environmental Science, 323, 012074. https://doi.org/10.1088/1755 1315/323/1/012074 | |
| dc.relation.references | Wiedmann, T. O., Schandl, H., Lenzen, M., Moran, D., Suh, S., West, J., & Kanemoto, K. (2015). The material footprint of Proceedings of the https://doi.org/10.1073/pnas.1220362110 National Academy of Sciences, 112(20), 6271-6276. | |
| dc.relation.references | World Economic Forum. (2025). Driving action on sustainable construction in 2025 and beyond. World Economic Forum. https://www.weforum.org/stories/2025/04/2025-sustainable-construction-barometer-call/ | |
| dc.relation.references | Wu, H., Zuo, J., Zillante, G., Wang, J., & Yuan, H. (2019). Status quo and future directions of construction and demolition waste A critical review. https://doi.org/10.1016/j.jclepro.2019.118163 Journal of Cleaner Production, 240, 118163. | |
| dc.relation.references | Wu, P., Xia, B., Pienaar, J., & Zhao, X. (2014). The past, present and future of carbon labelling for construction materials – A review. Building and Environment, 77, 160-168. https://doi.org/10.1016/j.buildenv.2014.03.023 | |
| dc.relation.references | Wu, P., Xia, B., & Wang, X. (2015). The contribution of ISO 14067 to the evolution of global greenhouse gas standards— A review. Renewable and Sustainable Energy Reviews, 47, 142-150. https://doi.org/10.1016/j.rser.2015.02.055 | |
| dc.relation.references | Wu, P., Xia, B., & Zhao, X. (2014). The importance of use and end-of-life phases to the life cycle greenhouse gas (GHG) emissions of concrete – A review. Renewable and Sustainable Energy Reviews, 37, 360-369. https://doi.org/10.1016/j.rser.2014.04.070 | |
| dc.relation.references | Wu, Y., & Su, D. (2020). Chapter 3. Review of Life Cycle Impact Assessment (LCIA) Methods and Inventory Databases. En Sustainable Product Development: Tools, Methods and Examples. Springer International Publishing. https://doi.org/10.1007/978-3-030-39149-2 | |
| dc.relation.references | Xikai, M., Lixiong, W., Jiwei, L., Xiaoli, Q., & Tongyao, W. (2019). Comparison of regression models for estimation of carbon emissions during building’s lifecycle using designing factors: A case study of residential buildings in Tianjin, China. Energy and Buildings, 204, 109519. https://doi.org/10.1016/j.enbuild.2019.109519 | |
| dc.relation.references | Xu, J., Teng, Y., Pan, W., & Zhang, Y. (2022). BIM-integrated LCA to automate embodied carbon assessment of prefabricated buildings. Journal https://doi.org/10.1016/j.jclepro.2022.133894 of Cleaner Production, 374, 133894. | |
| dc.relation.references | Xu, Z., Wang, S., & Wang, E. (2019). Integration of BIM and Energy Consumption Modelling for Manufacturing Prefabricated Components: A Case Study in China. Advances in Civil Engineering, 2019, 1-18. https://doi.org/10.1155/2019/1609523 | |
| dc.relation.references | Xue, K., Hossain, Md. U., Liu, M., Ma, M., Zhang, Y., Hu, M., Chen, X., & Cao, G. (2021). BIM Integrated LCA for Promoting Circular Economy towards Sustainable Construction: An Analytical Review. Sustainability, 13(3), 1310. https://doi.org/10.3390/su13031310 | |
| dc.relation.references | Yang, T., Dong, Y., Tang, B., & Xu, Z. (2024). Developing a dynamic life cycle assessment framework for buildings through integrating building information modeling and building energy modeling program. Science of The Total Environment, 946, 174284. https://doi.org/10.1016/j.scitotenv.2024.174284 | |
| dc.relation.references | Yang, W., & Wang, S. S. (2013). A BIM-LCA framework and case study of a residential building in Tianjin. https://doi.org/10.1201/b14896 | |
| dc.relation.references | Yang, W., Yang, L., Ren, J., & Yang, X. Q. (2019). Analyzing the life cycle environmental impacts in the Chinese building design process. En Life-Cycle Analysis and Assessment in Civil Engineering: Towards an Integrated Vision. | |
| dc.relation.references | Yang, X., Hu, M., Wu, J., & Zhao, B. (2018). Building-information-modeling enabled life cycle assessment, a case study on carbon footprint accounting for a residential building in China. Journal of Cleaner Production, 183, 729-743. https://doi.org/10.1016/j.jclepro.2018.02.070 | |
| dc.relation.references | Yangyang, H., & Gong, Z. (2021). An Add Environmental Dimension Using BIM-LCA integration Technology. E3S Web of Conferences, 253, 03027. https://doi.org/10.1051/e3sconf/202125303027 | |
| dc.relation.references | Yao, F., Liu, G., Ji, Y., Tong, W., Du, X., Li, K., Shrestha, A., & Martek, I. (2020). Evaluating the Environmental Impact of Construction within the Industrialized Building Process: A Monetization and Building Information Modelling Approach. International Journal of Environmental Research and Public Health, 17(22), 8396. https://doi.org/10.3390/ijerph17228396 | |
| dc.relation.references | Yarramsetty, S., Rohullah, M. S., Sivakumar, M. V. N., & P, A. R. (2020). An investigation on energy consumption in residential building with different orientation: A BIM approach. Asian Journal of Civil Engineering, 21(2), 253 266. https://doi.org/10.1007/s42107-019-00189-z | |
| dc.relation.references | Yavan, F., Maalek, R., & Toğan, V. (2024). Structural Optimization of Trusses in Building Information Modeling (BIM) Projects Using Visual Programming, Evolutionary Algorithms, and Life Cycle Assessment (LCA) Tools. Buildings, 14(6), 1532. https://doi.org/10.3390/buildings14061532 | |
| dc.relation.references | Yeung, J., J Hahn Menacho, A., Marvuglia, A., Navarrete Gutiérrez, T., Beach, T., & Rezgui, Y. (2023). An open building information modelling based co-simulation architecture to model building energy and environmental life cycle assessment: A case study on two buildings in the United Kingdom and Luxembourg. Renewable and Sustainable Energy Reviews, 183, 113419. https://doi.org/10.1016/j.rser.2023.113419 | |
| dc.relation.references | Yi, H., & Braham, W. W. (2015). Uncertainty characterization of building emergy analysis (BEmA). Building and Environment, 92, 538-558. https://doi.org/10.1016/j.buildenv.2015.05.007 | |
| dc.relation.references | Yin, R. K. (2011). Qualitative research from start to finish. Guilford Press. | |
| dc.relation.references | Yin, R. K. (2018). Case study research and applications: Design and methods (Sixth edition). SAGE. | |
| dc.relation.references | Yin, X., Liu, H., Chen, Y., & Al-Hussein, M. (2019). Building information modelling for off-site construction: Review and future directions. Automation in Construction, 101, 72-91. https://doi.org/10.1016/j.autcon.2019.01.010 | |
| dc.relation.references | Yılmaz, Y., & Seyis, S. (2021). Mapping the scientific research of the life cycle assessment in the construction industry: A scientometric analysis. Building https://doi.org/10.1016/j.buildenv.2021.108086 and Environment, 204, 108086. | |
| dc.relation.references | Yuan, L., & Qiu, J. Y. (2012). An Analysis of Embodied Carbon between Different Types of Residential Buildings in China. Advanced Materials Research, 450-451, 1557-1561. https://doi.org/10.4028/www.scientific.net/AMR.450-451.1557 | |
| dc.relation.references | Yuan, Y., & Jin, Z. (2015). Life Cycle Assessment of Building Energy in Big-Data Era: Theory and Framework. 2015 International Conference on Network and Information Systems for Computers, 601-605. https://doi.org/10.1109/ICNISC.2015.130 | |
| dc.relation.references | Yuan, Y., & Yuan, J. (2011). The theory and framework of integration design of building consumption efficiency based on BIM. Procedia Engineering, 15, 5323-5327. https://doi.org/10.1016/j.proeng.2011.08.987 | |
| dc.relation.references | Yung, P., & Wang, X. (2014). A 6D CAD Model for the Automatic Assessment of Building Sustainability. International Journal of Advanced Robotic Systems, 11(8), 131. https://doi.org/10.5772/58446 | |
| dc.relation.references | Zabalza Bribián, I., Aranda Usón, A., & Scarpellini, S. (2009). Life cycle assessment in buildings: State-of-the-art and simplified LCA methodology as a complement for building certification. Building and Environment, 44(12), 2510-2520. https://doi.org/10.1016/j.buildenv.2009.05.001 | |
| dc.relation.references | Zabalza Bribián, I., Valero Capilla, A., & Aranda Usón, A. (2011). Life cycle assessment of building materials: Comparative analysis of energy and environmental impacts and evaluation of the eco-efficiency improvement potential. Building and Environment, 46(5), 1133-1140. https://doi.org/10.1016/j.buildenv.2010.12.002 | |
| dc.relation.references | Zahedi, A., & Petzold, F. (2019). Seamless integration of simulation and analysis in early design phases. En Life-Cycle Analysis and Assessment in Civil Engineering: Towards an Integrated Vision. | |
| dc.relation.references | Zamagni, A. (2012). Life cycle sustainability assessment. The International Journal of Life Cycle Assessment, 17(4), 373 376. https://doi.org/10.1007/s11367-012-0389-8 | |
| dc.relation.references | Zamagni, A., Buttol, P., Porta, P. L., Buonamici, R., Masoni, P., Guinée, J., Heijungs, R., Ekvall, T., Bersani, R., Bie, A., & Pretato, U. (2008). CRITICAL REVIEW OF THE CURRENT RESEARCH NEEDS AND LIMITATIONS RELATED TO ISO-LCA PRACTICE. 125. | |
| dc.relation.references | Zanni, M., Sharpe, T., Lammers, P., Arnold, L., & Pickard, J. (2019). Developing a Methodology for Integration of Whole Life Costs into BIM Processes to Assist Design Decision Making. Buildings, 9(5), 114. https://doi.org/10.3390/buildings9050114 | |
| dc.relation.references | Zhang, H., Babar, M. A., & Tell, P. (2011). Identifying relevant studies in software engineering. Information and Software Technology, 53(6), 625-637. https://doi.org/10.1016/j.infsof.2010.12.010 | |
| dc.relation.references | Zhao, X. (2017). A scientometric review of global BIM research: Analysis and visualization. Automation in Construction, 80, 37-47. https://doi.org/10.1016/j.autcon.2017.04.002 | |
| dc.relation.references | Zheng, B., Hussain, M., Yang, Y., Chan, A. P. C., & Chi, H.-L. (2023). Trade-offs between accuracy and efficiency in BIM-LCA integration. Engineering, https://doi.org/10.1108/ECAM-03-2023-0270 Construction and Architectural Management. | |
| dc.relation.references | Zhou, Y., Tam, V., & Le, K. N. (2023a). Trade-Off Between Embodied and Operational Carbon Emissions of Residential Buildings in Early Design Stage. 36th International Conference on Efficiency, Cost, Optimization, Simulation and Environmental Impact of Energy Systems (ECOS 2023), 3025-3034. https://doi.org/10.52202/069564-0271 | |
| dc.relation.references | Zhou, Y., Tam, V. Wy., & Le, K. N. (2023b). Sensitivity analysis of design variables in life-cycle environmental impacts of buildings. Journal of Building Engineering, 65, 105749. https://doi.org/10.1016/j.jobe.2022.105749 | |
| dc.relation.references | Zimmermann, R. K., Bruhn, S., & Birgisdóttir, H. (2021). BIM-Based Life Cycle Assessment of Buildings—An Investigation of Industry Practice and Needs. Sustainability, 13(10), 5455. https://doi.org/10.3390/su13105455 | |
| dc.relation.references | Zong, C., Margesin, M., Staudt, J., Deghim, F., & Lang, W. (2022). Decision-making under uncertainty in the early phase of building façade design based on multi-objective stochastic optimization. Building and Environment, 226, 109729. https://doi.org/10.1016/j.buildenv.2022.109729 | |
| dc.relation.references | Zubair, M. U., Ali, M., Khan, M. A., Khan, A., Hassan, M. U., & Tanoli, W. A. (2024). BIM- and GIS-Based Life-Cycle Assessment Framework for Enhancing Eco Efficiency and Sustainability in the Construction Sector. Buildings, 14(2), 360. https://doi.org/10.3390/buildings14020360 | |
| dc.relation.references | Zuo, J., Pullen, S., Rameezdeen, R., Bennetts, H., Wang, Y., Mao, G., Zhou, Z., Du, H., & Duan, H. (2017). Green building evaluation from a life-cycle perspective in Australia: A critical review. Renewable and Sustainable Energy Reviews, 70, 358-368. https://doi.org/10.1016/j.rser.2016.11.251 | |
| dc.rights.accessrights | info:eu-repo/semantics/openAccess | |
| dc.rights.license | Atribución-NoComercial-SinDerivadas 4.0 Internacional | |
| dc.rights.uri | http://creativecommons.org/licenses/by-nc-nd/4.0/ | |
| dc.subject.armarc | Análisis del impacto ambiental | spa |
| dc.subject.armarc | Industria de la construcción | spa |
| dc.subject.armarc | Construcción sostenible | spa |
| dc.subject.armarc | Construcción -- Metodología | spa |
| dc.subject.ddc | 690 - Construcción de edificios | |
| dc.subject.lcc | Building information modeling | eng |
| dc.subject.lcc | Environmental impact analysis | eng |
| dc.subject.lcc | Construction industry | eng |
| dc.subject.lcc | Sustainable construction | eng |
| dc.subject.proposal | Análisis del Ciclo de Vida (ACV) | spa |
| dc.subject.proposal | Revisión Sistemática de Literatura (RSL) | spa |
| dc.subject.proposal | Estudio de Caso | spa |
| dc.subject.proposal | Construcción Sostenible | spa |
| dc.subject.proposal | Life Cycle Assessment (LCA) | eng |
| dc.subject.proposal | Building Information Modeling (BIM) | eng |
| dc.subject.proposal | Systematic Literature Review (SLR) | eng |
| dc.subject.proposal | Case Study | eng |
| dc.subject.proposal | Sustainable Construction | eng |
| dc.title | Building Information Modeling (BIM) y análisis de ciclo de vida (ACV): meta análisis y estudio de caso en empresas constructoras de Bogotá | spa |
| dc.title.translated | Building Information Modeling (BIM) and Life Cycle Assessment (LCA): Meta-analysis and Case study in contruction companies in Bogotá | eng |
| dc.type | Trabajo de grado - Maestría | |
| dc.type.coar | http://purl.org/coar/resource_type/c_bdcc | |
| dc.type.coarversion | http://purl.org/coar/version/c_ab4af688f83e57aa | |
| dc.type.content | Text | |
| dc.type.driver | info:eu-repo/semantics/masterThesis | |
| dc.type.redcol | http://purl.org/redcol/resource_type/TM | |
| dc.type.version | info:eu-repo/semantics/acceptedVersion | |
| dcterms.audience.professionaldevelopment | Especializada | |
| dcterms.audience.professionaldevelopment | Estudiantes | |
| dcterms.audience.professionaldevelopment | Investigadores | |
| dcterms.audience.professionaldevelopment | Maestros | |
| dcterms.audience.professionaldevelopment | Público general | |
| oaire.accessrights | http://purl.org/coar/access_right/c_abf2 |
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