Manglares para la protección de socio-ecosistemas costeros. Caso de estudio Punta Soldado, Pacífico Colombiano

dc.contributor.advisorOsorio Arias, Andrés Fernando
dc.contributor.advisorVillegas Palacio, Clara Inés
dc.contributor.authorZapata Delgado, Natalia
dc.contributor.cvlachttps://scienti.minciencias.gov.co/cvlac/visualizador/generarCurriculoCv.do?cod_rh=0002140076spa
dc.contributor.researchgroupOceanicos Grupo de Oceanografía E Ingeniería Costera de la Universidad Nacionalspa
dc.coverage.regionCosta Pacífica (Colombia)
dc.date.accessioned2025-04-09T14:21:57Z
dc.date.available2025-04-09T14:21:57Z
dc.date.issued2024
dc.descriptionIlustraciones, gráficos, mapas, fotografíasspa
dc.description.abstractLos manglares son sistemas socioecológicos (SSE) costeros en los que los factores biofísicos y socioeconómicos interactúan continuamente a diferentes escalas de tiempo y espacio. Estos ecosistemas desempeñan un papel crucial en la adaptación de las comunidades costeras a la variabilidad climática, ya que se ha comprobado que los manglares aportan múltiples Contribuciones de la Naturaleza a las Personas (NCP). Algunas de ellas son el papel de los manglares como barreras protectoras contra la acción de las olas y las inundaciones, el sustento de la pesca y otras especies marinas y la provisión de recursos esenciales y valores culturales para las comunidades costeras. La Costa Pacífica Colombiana (CPC) alberga extensas áreas de manglares, con una significativa importancia ecológica y socioeconómica. Sin embargo, estos ecosistemas han sufrido una severa degradación debido a la variabilidad climática y a la intervención humana. En este estudio, se lleva a cabo una evaluación interdisciplinar (desde enfoques biofísicos, económicos y sociales) del impacto de los fenómenos de variabilidad climática en la contribución de los manglares a la protección costera y otros NCP asociados. Para realizar esta evaluación se utilizan los marcos SSE y NCP propuestos por la IPBES. Se propone un marco metodológico y se aplica a un SSE de manglares en la CPC. Este nuevo marco integra la modelización numérica del papel de los manglares en la protección costera, la investigación cualitativa y los enfoques de valoración económica; para proponer un modelo cualitativo de sistemas dinámicos que ayude a ilustrar las interacciones entre las diferentes variables del sistema en escenarios de variabilidad climática. Se encontró que la función de protección costera de los manglares depende significativamente de las condiciones oceanográficas, como la dirección de las olas, su altura y el nivel relativo del mar. La relación no lineal entre la superficie del manglar y su capacidad de atenuación de las olas depende también de la altura de las olas. Para las condiciones medias del lugar de estudio, son necesarias 30 ha de manglares para garantizar una atenuación suficiente de las olas por este ecosistema. Las percepciones de la comunidad local coinciden con estos hallazgos, especialmente en lo que respecta a la limitada capacidad de protección de los manglares, que también está condicionada por la oceanografía. Además, este PNC está relacionado con otras contribuciones, como el apoyo a la identidad y el sentido de pertenencia de la comunidad, y la provisión de trabajo y alimentos especialmente para las mujeres a través de la piangua (Anadara sp.). El enfoque de valoración económica permitió comprender el papel del clima marino en el valor del PNC de protección costera de los manglares. El modelo de sistemas dinámicos cualitativos mostró las conexiones entre los elementos clave que desempeñan un papel directo o indirecto en los PCN de protección costera de los manglares a la luz del marco del SES. Se trata de un sistema de 106 bucles que ilustra su complejidad, considerando cómo los cambios en un elemento (biofísico, económico o social) pueden afectar a otro tipo de elementos construyendo bucles tanto de refuerzo como de equilibrio en torno a la protección costera. Este estudio pone de relieve la importancia de los enfoques interdisciplinarios para reforzar la resiliencia de los sistemas socio-ecológicos, no sólo frente al cambio climático, sino también frente a la variabilidad climática. Asimismo, los resultados obtenidos son aportaciones para que los profesionales y los responsables de la toma de decisiones propongan estrategias de reducción del riesgo que integren la gobernanza y los conocimientos locales y técnico-científicos. (Tomado de la fuente)spa
dc.description.abstractMangroves are coastal social-ecological systems (SES) in which biophysical and socio-economic factors interact continuously at different scales of time and space. These ecosystems play a crucial role in the adaptation of coastal communities to climate variability, since mangroves have been found to provide multiple Nature Contributions to People (NCPs). Some of these are mangroves’ role as protective barriers against wave action and flooding, sustaining fisheries and other marine species and providing essential resources and cultural values for coastal communities. The Colombian Pacific Coast (CPC) is home to extensive areas of mangroves, with significant ecological and socio-economic importance. However, these ecosystems have suffered severe degradation due to climate variability and human intervention. In this study, an interdisciplinary assessment (from biophysics, economy and social approaches) is carried out of the impact of climate variability events on the contribution of mangroves on coastal protection and other associated NCPs. The SES and NCPs frameworks proposed by the IPBES are used to perform this evaluation. A methodological framework is proposed and applied to a mangrove SES in the CPC. This new framework integrates numerical modelling of the role of mangroves on coastal protection, qualitative research and economic valuation approaches; to propose a dynamic systems qualitative model that help illustrate the interactions among the different variables of the system in climate variability scenarios. It was found that the coastal protection function of mangroves is significantly dependent on oceanographic conditions, such as wave direction, wave height and relative sea level. The non-linear relationship between mangrove area and its wave attenuation capacity is also dependent on the wave height. For average conditions in the study site, 30 ha of mangroves are necessary to guarantee enough wave attenuation by this ecosystem. The perceptions of the local community agree with these findings, particularly regarding the limited protecting capacity of mangroves that are also conditioned by oceanography. Additionally, this NCP is related with other contributions, such as supporting the community's identity and sense of belonging, and the provisioning of work and food specially for women through piangua (Anadara sp.). The economic valuation approach gave insights about the role of sea climate on the value of mangroves’ coastal protection NCP. The qualitative dynamic systems model showed the connections among the key elements that play a direct or indirect role in mangrove’s coastal protection NCPs at the light of the SES framework. This is a 106-loop system that illustrates its complexity, considering how changes in one element (biophysical, economic or social) can affect other kinds of elements building both reinforcing and balancing loops around coastal protection. This study highlights the importance of interdisciplinary approaches to strengthen social-ecological systems resilience not only for climate change but climate variability. Also, the results obtained are inputs for practitioners and decision makers to propose risk reduction strategies that integrate governance, local and technical-scientific knowledge.eng
dc.description.curricularareaMedio Ambiente.Sede Medellínspa
dc.description.degreelevelMaestríaspa
dc.description.degreenameMagíster en Ingeniería - Recursos Hidráulicosspa
dc.description.notesEl contenido de la tesis se encuentra en idioma inglésspa
dc.description.researchareaProcesos y Manejo de Zonas Costerasspa
dc.description.sponsorshipPrograma de Extensión Solidaria de la Universidad Nacional de Colombiaspa
dc.format.extent115 páginasspa
dc.format.mimetypeapplication/pdfspa
dc.identifier.instnameUniversidad Nacional de Colombiaspa
dc.identifier.reponameRepositorio Institucional Universidad Nacional de Colombiaspa
dc.identifier.repourlhttps://repositorio.unal.edu.co/spa
dc.identifier.urihttps://repositorio.unal.edu.co/handle/unal/87909
dc.language.isoengspa
dc.publisherUniversidad Nacional de Colombiaspa
dc.publisher.branchUniversidad Nacional de Colombia - Sede Medellínspa
dc.publisher.facultyFacultad de Minasspa
dc.publisher.placeMedellín, Colombiaspa
dc.publisher.programMedellín - Minas - Maestría en Ingeniería - Recursos Hidráulicosspa
dc.relation.indexedLaReferenciaspa
dc.relation.referencesAbd Rahman, M. A., & Asmawi, M. Z. (2016). MANGROVES DEGRADATION: A LOCAL PERSPECTIVE ON ITS AWARENESS. PLANNING MALAYSIA, 4. https://doi.org/10.21837/pm.v14i4.162spa
dc.relation.referencesAfonso, F., Félix, P. M., Chainho, P., Heumüller, J. A., de Lima, R. F., Ribeiro, F., & Brito, A. C. (2022). Community perceptions about mangrove ecosystem services and threats. Regional Studies in Marine Science, 49. Scopus. https://doi.org/10.1016/j.rsma.2021.102114spa
dc.relation.referencesAlongi, D. M. (2008). Mangrove forests: Resilience, protection from tsunamis, and responses to global climate change. Estuarine, Coastal and Shelf Science, 76(1), 1–13. https://doi.org/10.1016/j.ecss.2007.08.024spa
dc.relation.referencesAramburo, D., Montoya, R. D., & Osorio, A. F. (2022). Impact of the ENSO phenomenon on wave variability in the Pacific Ocean for wind sea and swell waves. Dynamics of Atmospheres and Oceans, 100, 101328. https://doi.org/10.1016/j.dynatmoce.2022.101328spa
dc.relation.referencesAudu, S. I. (2022). Perceptions of mangrove ecosystem services and conservation priorities by decision-makers and key stakeholders in Nigeria. https://commons.wmu.se/cgi/viewcontent.cgi?article=3107&context=all_dissertationsspa
dc.relation.referencesAunurrahman, A., Anggoro, S., Muskananfola, M. R., & Saputra, S. W. (2023). Detection and analysis of mangrove cover change in Kepalajerih Island, Batam, Indonesia using Landsat Imagery. Biodiversitas Journal of Biological Diversity, 24(11). https://doi.org/10.13057/biodiv/d241134spa
dc.relation.referencesÁvila-Foucat, S., & Espejel, I. (2020). Resiliencia de socioecosistemas costeros. Universidad Nacional Autónoma de México. Instituto de Investigaciones Económicas. https://www.pensalatitec.iiec.unam.mx/sites/iiec.unam.mx/files/libros_electronicos/RSC_SAT_0.pdfspa
dc.relation.referencesBadola, R., Barthwal, S., & Hussain, S. A. (2012). Attitudes of local communities towards conservation of mangrove forests: A case study from the east coast of India. Estuarine, Coastal and Shelf Science, 96(1), 188–196. Scopus. https://doi.org/10.1016/j.ecss.2011.11.016spa
dc.relation.referencesBadola, R., & Hussain, S. A. (2005). Valuing ecosystem functions: An empirical study on the storm protection function of Bhitarkanika mangrove ecosystem, India. Environmental Conservation, 32(1), 85–92. Scopus. https://doi.org/10.1017/S0376892905001967spa
dc.relation.referencesBarbier, E. B. (2007). Valuing ecosystem services as productive inputs. Economic Policy, 22(49), 178–229. https://doi.org/10.1111/j.1468-0327.2007.00174.xspa
dc.relation.referencesBarbier, E. B. (2015). Valuing the storm protection service of estuarine and coastal ecosystems. Ecosystem Services, 11, 32–38. https://doi.org/10.1016/j.ecoser.2014.06.010spa
dc.relation.referencesBarbier, E. B. (2016). The protective service of mangrove ecosystems: A review of valuation methods. Marine Pollution Bulletin, 109(2), 676–681. https://doi.org/10.1016/j.marpolbul.2016.01.033spa
dc.relation.referencesBarbier, E. B., Hacker, S. D., Kennedy, C., Koch, E. W., Stier, A. C., & Silliman, B. R. (2011). The value of estuarine and coastal ecosystem services. Ecological Monographs, 81(2), 169–193. https://doi.org/10.1890/10-1510.1spa
dc.relation.referencesBarbier, E. B., Koch, E. W., Silliman, B. R., Hacker, S. D., Wolanski, E., Primavera, J., Granek, E. F., Polasky, S., Aswani, S., Cramer, L. A., Stoms, D. M., Kennedy, C. J., Bael, D., Kappel, C. V., Perillo, G. M. E., & Reed, D. J. (2008). Coastal Ecosystem-Based Management with Nonlinear Ecological Functions and Values. Science, 319(5861), 321–323. https://doi.org/10.1126/science.1150349spa
dc.relation.referencesBarbosa Hurtado, J. P. (2018). Estudio de los procesos de transporte (advección y dispersión) de los sólidos suspendidos totales en la bahía interior de Buenaventura, Colombia. https://bibliotecadigital.univalle.edu.co/entities/publication/69b550ef-ca62-4383-94d1-999526447f01/fullspa
dc.relation.referencesBell, J., & Lovelock, C. E. (2013). Insuring Mangrove Forests for Their Role in Mitigating Coastal Erosion and Storm -Surge: An Australian Case Study. Wetlands, 33(2), 279–289. https://doi.org/10.1007/s13157-013-0382-4spa
dc.relation.referencesBelliard, J.-P., Dominguez-Granda, L. E., Ramos-Veliz, J. A., Rosado-Moncayo, A. M., Nath, J., Govers, G., Gourgue, O., & Temmerman, S. (2021). El Niño driven extreme sea levels in an Eastern Pacific tropical river delta: Landward amplification and shift from oceanic to fluvial forcing. Global and Planetary Change, 203, 103529. https://doi.org/10.1016/j.gloplacha.2021.103529spa
dc.relation.referencesBimrah, K., Dasgupta, R., Hashimoto, S., Saizen, I., & Dhyani, S. (2022). Ecosystem Services of Mangroves: A Systematic Review and Synthesis of Contemporary Scientific Literature. Sustainability, 14(19), Article 19. https://doi.org/10.3390/su141912051spa
dc.relation.referencesBlanco, J. F., & Cantera, J. R. (1999). The Vertical Distribution of Mangrove Gastropods and Environmental Factors Relative to Tide Level at Buenaventura Bay, Pacific Coast of Colombia. Bulletin of Marine Science, 65(3), 617–630.spa
dc.relation.referencesBlankespoor, B., Dasgupta, S., & Lange, G.-M. (2017). Mangroves as a protection from storm surges in a changing climate. Ambio, 46(4), 478–491. https://doi.org/10.1007/s13280-016-0838-xspa
dc.relation.referencesBongaarts, J. (2019). IPBES, 2019. Summary for policymakers of the global assessment report on biodiversity and ecosystem services of the Intergovernmental Science‐Policy Platform on Biodiversity and Ecosystem Services. Population and Development Review, 45(3), 680–681. https://doi.org/10.1111/padr.12283spa
dc.relation.referencesBoyer, T., & Polasky, S. (2004). Valuing urban wetlands: A review of non-market valuation studies. Wetlands, 24(4), 744–755. https://doi.org/10.1672/0277-5212(2004)024[0744:VUWARO]2.0.CO;2spa
dc.relation.referencesBravo Pazmiño, H. E. (1998). Diversidad Cultural y Manglares Del Pacífico Colombiano. Ministerio del Medio Ambiente. https://es.scribd.com/document/507999658/Diversidad-Cultural-y-Manglares-Del-Pacifico-Colombianospa
dc.relation.referencesBryan-Brown, D. N., Connolly, R. M., Richards, D. R., Adame, F., Friess, D. A., & Brown, C. J. (2020). Global trends in mangrove forest fragmentation. Scientific Reports, 10(1), 7117. https://doi.org/10.1038/s41598-020-63880-1spa
dc.relation.referencesBryant, M., Bryant, D., Provost, L., Hurst, N., McHugh, M., Wargula, A., & Tomiczek, T. (2022). Wave attenuation of coastal mangroves at a near-prototype scale. Engineer Research and Development Center (U.S.). https://doi.org/10.21079/11681/45565spa
dc.relation.referencesBunting, P., Rosenqvist, A., Hilarides, L., Lucas, R. M., Thomas, N., Tadono, T., Worthington, T. A., Spalding, M., Murray, N. J., & Rebelo, L.-M. (2022). Global Mangrove Extent Change 1996–2020: Global Mangrove Watch Version 3.0. Remote Sensing, 14(15), Article 15. https://doi.org/10.3390/rs14153657spa
dc.relation.referencesCaicedo, W. T. V. (2019). Caracterización de prácticas tradicionales de extracción de moluscos (Mollusca) y crustáceos (Crustacea) empleados para uso culinario en la comunidad de Quiroga, Consejo Comunitario Río Guajuí de la costa pacífica caucana colombiana. Revista Bioetnia, 16(1), Article 1. https://doi.org/10.51641/bioetnia.v16i1.218spa
dc.relation.referencesCantera, J. R., & Blanco, J. F. (2001). The Estuary Ecosystem of Buenaventura Bay, Colombia. In U. Seeliger & B. Kjerfve (Eds.), Coastal Marine Ecosystems of Latin America (pp. 265–280). Springer. https://doi.org/10.1007/978-3-662-04482-7_19spa
dc.relation.referencesChen, X., Yin, Z., Li, Z., Wang, B., Tao, A., Guo, Z., Wang, F., An, Y., & O’Driscoll, K. (2024). Overview on Mangrove Forest Disaster Prevention and Mitigation Functions. Journal of Ocean University of China, 23(1), 46–56. https://doi.org/10.1007/s11802-024-5672-3spa
dc.relation.referencesConsejo Comunitario de la Comunidad Negra de Punta Soldado, Playa Viva, Puin Castaño, B., & Álvarez, A. M. (2023). Punta Soldado: Historia y Decisiones. Centro de Excelencia en Ciencias Marinas - CEMarin. https://cemarin.org/wp-content/uploads/2023/11/e-book_Historia-y-Decisiones_PS.pdfspa
dc.relation.referencesCostanza, R. (2020). Valuing natural capital and ecosystem services toward the goals of efficiency, fairness, and sustainability. Ecosystem Services, 43, 101096. https://doi.org/10.1016/j.ecoser.2020.101096spa
dc.relation.referencesCostanza, R., d’Arge, R., de Groot, R., Farber, S., Grasso, M., Hannon, B., Limburg, K., Naeem, S., O’Neill, R. V., Paruelo, J., Raskin, R. G., Sutton, P., & van den Belt, M. (1997). The value of the world’s ecosystem services and natural capital. Nature, 387(6630), 253–260. https://doi.org/10.1038/387253a0spa
dc.relation.referencesDahdouh-Guebas, F., Hugé, J., Abuchahla, G. M. O., Cannicci, S., Jayatissa, L. P., Kairo, J. G., Kodikara Arachchilage, S., Koedam, N., Mafaziya Nijamdeen, T. W. G. F., Mukherjee, N., Poti, M., Prabakaran, N., Ratsimbazafy, H. A., Satyanarayana, B., Thavanayagam, M., Vande Velde, K., & Wodehouse, D. (2021). Reconciling nature, people and policy in the mangrove social-ecological system through the adaptive cycle heuristic. Estuarine, Coastal and Shelf Science. Scopus. https://doi.org/10.1016/j.ecss.2020.106942spa
dc.relation.referencesDamastuti, E., & de Groot, R. (2019). Participatory ecosystem service mapping to enhance community-based mangrove rehabilitation and management in Demak, Indonesia. Regional Environmental Change, 19(1), 65–78. https://doi.org/10.1007/s10113-018-1378-7spa
dc.relation.referencesDelgado, M. F., Gualteros, W., Espinosa, S., Lucero, C., Roldan, A. M., Zapata, L., & Cantera, J. R. (2010). Pianguando—Estrategias para el manejo de la piangua (Cartilla). https://wwflac.awsassets.panda.org/downloads/carrtilla_pianguando_web_2.pdfspa
dc.relation.referencesDíaz, S., Demissew, S., Carabias, J., Joly, C., Lonsdale, M., Ash, N., Larigauderie, A., Adhikari, J. R., Arico, S., Báldi, A., Bartuska, A., Baste, I. A., Bilgin, A., Brondizio, E., Chan, K. M., Figueroa, V. E., Duraiappah, A., Fischer, M., Hill, R., … Zlatanova, D. (2015). The IPBES Conceptual Framework—Connecting nature and people. Current Opinion in Environmental Sustainability, 14, 1–16. https://doi.org/10.1016/j.cosust.2014.11.002spa
dc.relation.referencesDíaz, S., Pascual, U., Stenseke, M., Martín-López, B., Watson, R. T., Molnár, Z., Hill, R., Chan, K. M. A., Baste, I. A., Brauman, K. A., Polasky, S., Church, A., Lonsdale, M., Larigauderie, A., Leadley, P. W., Van Oudenhoven, A. P. E., Van Der Plaat, F., Schröter, M., Lavorel, S., … Shirayama, Y. (2018). Assessing nature’s contributions to people. Science, 359(6373), 270–272. https://doi.org/10.1126/science.aap8826spa
dc.relation.referencesElwell, T. L., Gelcich, S., Gaines, S. D., & López-Carr, D. (2018). Using people’s perceptions of ecosystem services to guide modeling and management efforts. Science of The Total Environment, 637–638, 1014–1025. https://doi.org/10.1016/j.scitotenv.2018.04.052spa
dc.relation.referencesFAO. (2020). Global Forest Resources Assessment 2020. FAO ; https://openknowledge.fao.org/handle/20.500.14283/ca9825enspa
dc.relation.referencesFigueroa, L., Figueroa Del Castillo, L., & Álvarez-León, R. (2011). Evaluation of mangrove soils in two localities of the Ensenada de Tumaco, Colombian Pacific.spa
dc.relation.referencesFriess, D. A., Rogers, K., Lovelock, C. E., Krauss, K. W., Hamilton, S. E., Lee, S. Y., Lucas, R., Primavera, J., Rajkaran, A., & Shi, S. (2019). The State of the World’s Mangrove Forests: Past, Present, and Future. Annual Review of Environment and Resources, 44(Volume 44, 2019), 89–115. https://doi.org/10.1146/annurev-environ-101718-033302spa
dc.relation.referencesFuentes, J. E., Olaya, R. A., & Garcia, C. E. (2022). Evaluation of Coastal Erosion in the Watersheds of Municipality of Buenaventura, Colombia: Using Geospatial Techniques and the Composite Vulnerability Index. ISPRS International Journal of Geo-Information, 11(11), Article 11. https://doi.org/10.3390/ijgi11110568spa
dc.relation.referencesGallego Perez, B. E., & Selvaraj, J. J. (2019). Evaluation of coastal vulnerability for the District of Buenaventura, Colombia: A geospatial approach. Remote Sensing Applications: Society and Environment, 16, 100263. https://doi.org/10.1016/j.rsase.2019.100263spa
dc.relation.referencesGatt, Y. M., Andradi-Brown, D. A., Ahmadia, G. N., Martin, P. A., Sutherland, W. J., Spalding, M. D., Donnison, A., & Worthington, T. A. (2022). Quantifying the Reporting, Coverage and Consistency of Key Indicators in Mangrove Restoration Projects. Frontiers in Forests and Global Change, 5, 720394. https://doi.org/10.3389/ffgc.2022.720394spa
dc.relation.referencesGedan, K. B., Kirwan, M. L., Wolanski, E., Barbier, E. B., & Silliman, B. R. (2011). The present and future role of coastal wetland vegetation in protecting shorelines: Answering recent challenges to the paradigm. Climatic Change, 106(1), 7–29. https://doi.org/10.1007/s10584-010-0003-7spa
dc.relation.referencesGijsman, R., Horstman, E. M., Van Der Wal, D., Friess, D. A., Swales, A., & Wijnberg, K. M. (2021). Nature-Based Engineering: A Review on Reducing Coastal Flood Risk With Mangroves. Frontiers in Marine Science, 8, 702412. https://doi.org/10.3389/fmars.2021.702412spa
dc.relation.referencesGlaeser, B., Bruckmeier, K., Glaser, M., & Krause, G. (2009). Social-Ecological Systems Analysis in Coastal and Marine Areas: A Path toward Integration of Interdisciplinary Knowledge. In Current Trends in Human Ecology (1st ed., pp. 183–203). Cambridge Scholars Publishing. https://doi.org/10.5848/CSP.0441.00008spa
dc.relation.referencesGlaser, M. (2003). Interrelations between mangrove ecosystem, local economy and social sustainability in Caeté Estuary, North Brazil. Wetlands Ecology and Management, 11(4), 265–272. https://doi.org/10.1023/A:1025015600125spa
dc.relation.referencesGnansounou, S. C., Salako, K. V., Sagoe, A. A., Mattah, P. A. D., Aheto, D. W., & Glèlè Kakaï, R. (2022). Mangrove Ecosystem Services, Associated Threats and Implications for Wellbeing in the Mono Transboundary Biosphere Reserve (Togo-Benin), West-Africa. Sustainability (Switzerland), 14(4). Scopus. https://doi.org/10.3390/su14042438spa
dc.relation.referencesGoldberg, L., Lagomasino, D., Thomas, N., & Fatoyinbo, T. (2020). Global declines in human‐driven mangrove loss. Global Change Biology, 26(10), 5844–5855. https://doi.org/10.1111/gcb.15275spa
dc.relation.referencesGolebie, E. J., Aczel, M., Bukoski, J. J., Chau, S., Ramirez-Bullon, N., Gong, M., & Teller, N. (2022). A qualitative systematic review of governance principles for mangrove conservation. Conservation Biology. Scopus. https://doi.org/10.1111/cobi.13850spa
dc.relation.referencesGuannel, G., Ruggiero, P., Faries, J., Arkema, K., Pinsky, M., Gelfenbaum, G., Guerry, A., & Kim, C.-K. (2015). Integrated modeling framework to quantify the coastal protection services supplied by vegetation. Journal of Geophysical Research: Oceans, 120(1), 324–345. https://doi.org/10.1002/2014JC009821spa
dc.relation.referencesHerison, A., Bengen, D. G., Romdania, Y., Zakaria, A., Luthfiyani, H. N., Al Safar, M. R., & Arief, F. D. (2023). THE CONCEPT OF SUSTAINABLE DEVELOPMENT WITH THE MANGROVE AVICENNIA MARINA AS A REDUCTOR OF WAVE ENERGY. ASEAN Engineering Journal, 13(2), 165–174. https://doi.org/10.11113/aej.v13.19274spa
dc.relation.referencesHernández-Blanco, M., Moritsch, M., Manrow, M., & Raes, L. (2022). Coastal Ecosystem Services Modeling in Latin America to Guide Conservation and Restoration Strategies: The Case of Mangroves in Guatemala and El Salvador. Frontiers in Ecology and Evolution, 10. https://www.frontiersin.org/articles/10.3389/fevo.2022.843145spa
dc.relation.referencesHicks, C. C., & Cinner, J. E. (2014). Social, institutional, and knowledge mechanisms mediate diverse ecosystem service benefits from coral reefs. Proceedings of the National Academy of Sciences, 111(50), 17791–17796. https://doi.org/10.1073/pnas.1413473111spa
dc.relation.referencesHill, R., Díaz, S., Pascual, U., Stenseke, M., Molnár, Z., & Van Velden, J. (2021). Nature’s contributions to people: Weaving plural perspectives. One Earth, 4(7), 910–915. https://doi.org/10.1016/j.oneear.2021.06.009spa
dc.relation.referencesHimes-Cornell, A., Grose, S. O., & Pendleton, L. (2018). Mangrove Ecosystem Service Values and Methodological Approaches to Valuation: Where Do We Stand? Frontiers in Marine Science, 5. https://www.frontiersin.org/articles/10.3389/fmars.2018.00376spa
dc.relation.referencesHoffmann, O. (2007). Comunidades negras en el Pacífico colombiano: Innovaciones y dinámicas étnicas (Edición castellana). IFEA Instituto Francés de Estudios Andinos ; IRD Institut de recherche pour le développement : Ediciones Abya-Yala.spa
dc.relation.referencesHorstman, E., Dohmen-Janssen, M., Narra, P., Berg, N.-J. van den, Siemerink, M., Balke, T., Bouma, T., & Hulscher, S. (2012). WAVE ATTENUATION IN MANGROVE FORESTS; FIELD DATA OBTAINED IN TRANG, THAILAND. Coastal Engineering Proceedings, 33, Article 33. https://doi.org/10.9753/icce.v33.waves.40spa
dc.relation.referencesHorstman, E. M., Dohmen-Janssen, C. M., Narra, P. M. F., van den Berg, N. J. F., Siemerink, M., & Hulscher, S. J. M. H. (2014). Wave attenuation in mangroves: A quantitative approach to field observations. Coastal Engineering, 94, 47–62. https://doi.org/10.1016/j.coastaleng.2014.08.005spa
dc.relation.referencesHu, Z., Suzuki, T., Zitman, T., Uittewaal, W., & Stive, M. (2014). Laboratory study on wave dissipation by vegetation in combined current–wave flow. Coastal Engineering, 88, 131–142. https://doi.org/10.1016/j.coastaleng.2014.02.009spa
dc.relation.referencesHutchison, J., Manica, A., Swetnam, R., Balmford, A., & Spalding, M. (2014). Predicting Global Patterns in Mangrove Forest Biomass. Conservation Letters, 7(3), 233–240. https://doi.org/10.1111/conl.12060spa
dc.relation.referencesHutchison, J., & Spalding, M. (2014). The Role of Mangroves in Fisheries Enhancement. The Nature Conservancy and Wetlands International. https://www.wetlands.org/publication/the-role-of-mangroves-in-fisheries-enhancement/spa
dc.relation.referencesIlman, M., Dargusch, P., Dart, P., & Onrizal. (2016). A historical analysis of the drivers of loss and degradation of Indonesia’s mangroves. Land Use Policy, 54, 448–459. https://doi.org/10.1016/j.landusepol.2016.03.010spa
dc.relation.referencesINVEMAR. (2022). Mapa de manglares de Colombia. Agenda del Mar Comunicaciones. https://agendadelmar.com/mapa-de-manglares-de-colombia/spa
dc.relation.referencesIslam, M. M., Sunny, A. R., Hossain, M. M., & Friess, D. A. (2018). Drivers of mangrove ecosystem service change in the Sundarbans of Bangladesh. Singapore Journal of Tropical Geography, 39(2), 244–265. Scopus. https://doi.org/10.1111/sjtg.12241spa
dc.relation.referencesK G, P., & Bhaskaran, P. K. (2017). Wave attenuation in presence of mangroves: A sensitivity study for varying bottom slopes. The International Journal of Ocean and Climate Systems, 8(3), 126–134. https://doi.org/10.1177/1759313117702919spa
dc.relation.referencesKachler, J., Isaac, R., Martín‐López, B., Bonn, A., & Felipe‐Lucia, M. R. (2023). Co‐production of nature’s contributions to people: What evidence is out there? People and Nature, 5(4), 1119–1134. https://doi.org/10.1002/pan3.10493spa
dc.relation.referencesKadykalo, A. N., López-Rodriguez, M. D., Ainscough, J., Droste, N., Ryu, H., Ávila-Flores, G., Le Clec’h, S., Muñoz, M. C., Nilsson, L., Rana, S., Sarkar, P., Sevecke, K. J., & Harmáčková, Z. V. (2019). Disentangling ‘ecosystem services’ and ‘nature’s contributions to people’. Ecosystems and People, 15(1), 269–287. https://doi.org/10.1080/26395916.2019.1669713spa
dc.relation.referencesKe, G.-N., Utama, I. K. A. P., Wagner, T., Sweetman, A. K., Arshad, A., Nath, T. K., Neoh, J. Y., Muchamad, L. S., & Suroso, D. S. A. (2022). Influence of mangrove forests on subjective and psychological wellbeing of coastal communities: Case studies in Malaysia and Indonesia. Frontiers in Public Health, 10. Scopus. https://doi.org/10.3389/fpubh.2022.898276spa
dc.relation.referencesKelly-Quinn, M., Christie, M., Bodoque, J. M., & Schoenrock, K. (2022). Ecosystem Services Approach and Natures Contributions to People (NCP) Help Achieve SDG6. In W. Leal Filho, A. M. Azul, L. Brandli, A. Lange Salvia, & T. Wall (Eds.), Clean Water and Sanitation (pp. 144–156). Springer International Publishing. https://doi.org/10.1007/978-3-319-95846-0_147spa
dc.relation.referencesKelty, K., Tomiczek, T., Cox, D. T., Lomonaco, P., & Mitchell, W. (2022). Prototype-Scale Physical Model of Wave Attenuation Through a Mangrove Forest of Moderate Cross-Shore Thickness: LiDAR-Based Characterization and Reynolds Scaling for Engineering With Nature. Frontiers in Marine Science, 8, 780946. https://doi.org/10.3389/fmars.2021.780946spa
dc.relation.referencesKoch, E. W., Barbier, E. B., Silliman, B. R., Reed, D. J., Perillo, G. M., Hacker, S. D., Granek, E. F., Primavera, J. H., Muthiga, N., Polasky, S., Halpern, B. S., Kennedy, C. J., Kappel, C. V., & Wolanski, E. (2009). Non-linearity in ecosystem services: Temporal and spatial variability in coastal protection. Frontiers in Ecology and the Environment, 7(1), 29–37. https://doi.org/10.1890/080126spa
dc.relation.referencesKochoni, B. I., Avakoudjo, H. G. G., Kamelan, T. M., Sinsin, C. B. L., & Kouamelan, E. P. (2023a). Contribution of mangroves ecosystems to coastal communities’ resilience towards climate change: A case study in southern Cote d’Ivoire. GeoJournal, 88(4), 3935–3951. Scopus. https://doi.org/10.1007/s10708-023-10845-2spa
dc.relation.referencesKochoni, B. I., Avakoudjo, H. G. G., Kamelan, T. M., Sinsin, C. B. L., & Kouamelan, E. P. (2023b). Contribution of mangroves ecosystems to coastal communities’ resilience towards climate change: A case study in southern Cote d’Ivoire. GeoJournal, 88(4), 3935–3951. https://doi.org/10.1007/s10708-023-10845-2spa
dc.relation.referencesKuckartz, U. (2014). Qualitative Text Analysis: A Guide to Methods, Practice & Using Software. SAGE Publications Ltd. https://doi.org/10.4135/9781446288719spa
dc.relation.referencesLamnek, S. (1993). Qualitative Sozialforschung: Methoden und Techniken. Beltz, Psychologie Verlags Union.spa
dc.relation.referencesLeal, M., & Spalding, M. (2022). The State of the World’s Mangroves 2022. Global Mangrove Alliance. https://www.mangrovealliance.org/wp-content/uploads/2022/09/The-State-of-the-Worlds-Mangroves-Report_2022.pdfspa
dc.relation.referencesLee, S. Y., Primavera, J. H., Dahdouh-Guebas, F., McKee, K., Bosire, J. O., Cannicci, S., Diele, K., Fromard, F., Koedam, N., Marchand, C., Mendelssohn, I., Mukherjee, N., & Record, S. (2014). Ecological role and services of tropical mangrove ecosystems: A reassessment. Global Ecology and Biogeography, 23(7), 726–743. https://doi.org/10.1111/geb.12155spa
dc.relation.referencesLiquete, C., Zulian, G., Delgado, I., Stips, A., & Maes, J. (2013). Assessment of coastal protection as an ecosystem service in Europe. Ecological Indicators, 30, 205–217. https://doi.org/10.1016/j.ecolind.2013.02.013spa
dc.relation.referencesLópez-Portillo, J., Lewis, R. R., Saenger, P., Rovai, A., Koedam, N., Dahdouh-Guebas, F., Agraz-Hernández, C., & Rivera-Monroy, V. H. (2017). Mangrove Forest Restoration and Rehabilitation. In V. H. Rivera-Monroy, S. Y. Lee, E. Kristensen, & R. R. Twilley (Eds.), Mangrove Ecosystems: A Global Biogeographic Perspective (pp. 301–345). Springer International Publishing. https://doi.org/10.1007/978-3-319-62206-4_10spa
dc.relation.referencesLovelock, C. E., Barbier, E., & Duarte, C. M. (2022a). Tackling the mangrove restoration challenge. PLOS Biology, 20(10), e3001836. https://doi.org/10.1371/journal.pbio.3001836spa
dc.relation.referencesLovelock, C. E., Barbier, E., & Duarte, C. M. (2022b). Tackling the mangrove restoration challenge. PLOS Biology, 20(10), e3001836. https://doi.org/10.1371/journal.pbio.3001836spa
dc.relation.referencesLozano Montoya, J. S., & Restrepo Cárdenas, S. F. (2019). Cambios socio-ambientales del poblado de punta soldado, Buenaventura, entre 1970 y 2018, debido a la erosión costera. https://bibliotecadigital.univalle.edu.co/entities/publication/c4937299-189c-4f0d-9a8a-3cc1e8ecba23spa
dc.relation.referencesMallick, B., Priodarshini, R., Kimengsi, J. N., Biswas, B., Hausmann, A. E., Islam, S., Huq, S., & Vogt, J. (2021). Livelihoods dependence on mangrove ecosystems: Empirical evidence from the Sundarbans. Current Research in Environmental Sustainability, 3, 100077. https://doi.org/10.1016/j.crsust.2021.100077spa
dc.relation.referencesMarois, D. E., & Mitsch, W. J. (2015). Coastal protection from tsunamis and cyclones provided by mangrove wetlands – a review. International Journal of Biodiversity Science, Ecosystem Services & Management, 11(1), 71–83. https://doi.org/10.1080/21513732.2014.997292spa
dc.relation.referencesMartín-López, B., Iniesta-Arandia, I., García-Llorente, M., Palomo, I., Casado-Arzuaga, I., Amo, D. G. D., Gómez-Baggethun, E., Oteros-Rozas, E., Palacios-Agundez, I., Willaarts, B., González, J. A., Santos-Martín, F., Onaindia, M., López-Santiago, C., & Montes, C. (2012). Uncovering Ecosystem Service Bundles through Social Preferences. PLOS ONE, 7(6), e38970. https://doi.org/10.1371/journal.pone.0038970spa
dc.relation.referencesMaza, M., Lara, J. L., & Losada, I. J. (2019). Experimental analysis of wave attenuation and drag forces in a realistic fringe Rhizophora mangrove forest. Advances in Water Resources, 131, 103376. https://doi.org/10.1016/j.advwatres.2019.07.006spa
dc.relation.referencesMazda, Y., Magi, M., Ikeda, Y., Kurokawa, T., & Asano, T. (2006). Wave reduction in a mangrove forest dominated by Sonneratia sp. Wetlands Ecology and Management, 14(4), 365–378. https://doi.org/10.1007/s11273-005-5388-0spa
dc.relation.referencesMazda, Y., Magi, M., Kogo, M., & Hong, P. N. (1997). Mangroves as a coastal protection from waves in the Tong King delta, Vietnam. Mangroves and Salt Marshes, 1(2), 127–135. https://doi.org/10.1023/A:1009928003700spa
dc.relation.referencesMcIvor, A. L., Möller, I., Spencer, T., & Spalding, M. (2012). Reduction of Wind and Swell Waves by Mangroves. Natural Coastal Protection Series: Report 1. Cambridge Coastal Research Unit Working Paper 40. ISSN 2050-7941. https://repository.tudelft.nl/islandora/object/uuid%3Ac77ceec8-8db6-4080-b5bb-f414dca9d39dspa
dc.relation.referencesMenéndez, P., Losada, I. J., Beck, M. W., Torres-Ortega, S., Espejo, A., Narayan, S., Díaz-Simal, P., & Lange, G.-M. (2018). Valuing the protection services of mangroves at national scale: The Philippines. Ecosystem Services, 34, 24–36. https://doi.org/10.1016/j.ecoser.2018.09.005spa
dc.relation.referencesMenéndez, P., Losada, I. J., Torres-Ortega, S., Narayan, S., & Beck, M. W. (2020). The Global Flood Protection Benefits of Mangroves. Scientific Reports, 10(1), 4404. https://doi.org/10.1038/s41598-020-61136-6spa
dc.relation.referencesMillennium Ecosystem Assessment (Program) (Ed.). (2005). Ecosystems and human well-being: Wetlands and water synthesis: a report of the Millennium Ecosystem Assessment. World Resources Institute.spa
dc.relation.referencesMitra, A. (2020). Mangroves: A Natural Ecosystem of Cultural and Religious Convergence. In A. Mitra, Mangrove Forests in India (pp. 337–352). Springer International Publishing. https://doi.org/10.1007/978-3-030-20595-9_10spa
dc.relation.referencesMohamed, M. K., Adam, E., & Jackson, C. M. (2024). Assessing the Perception and Contribution of Mangrove Ecosystem Services to the Well-Being of Coastal Communities of Chwaka and Menai Bays, Zanzibar. Resources, 13(1). Scopus. https://doi.org/10.3390/resources13010007spa
dc.relation.referencesMorris, R. L., Boxshall, A., & Swearer, S. E. (2020). Climate-resilient coasts require diverse defence solutions. Nature Climate Change, 10(6), 485–487. https://doi.org/10.1038/s41558-020-0798-9spa
dc.relation.referencesMosquera Torres, G., & Aprile Gniset, J. (2018). Aldeas de la costa de Buenaventura (v3). https://bibliotecadigital.univalle.edu.co/entities/publication/09484b76-c593-439b-b45d-420189e38cf1spa
dc.relation.referencesMshale, B., Senga, M., & Mwangi, E. (2017). Governing mangroves: Unique challenges for managing Tanzania’s coastal forests. Center for International Forestry Research (CIFOR). https://doi.org/10.17528/cifor/006596spa
dc.relation.referencesMuis, S., Haigh, I. D., Guimarães Nobre, G., Aerts, J. C. J. H., & Ward, P. J. (2018). Influence of El Niño-Southern Oscillation on Global Coastal Flooding. Earth’s Future, 6(9), 1311–1322. https://doi.org/10.1029/2018EF000909spa
dc.relation.referencesMunang, R., Thiaw, I., Alverson, K., Mumba, M., Liu, J., & Rivington, M. (2013). Climate change and Ecosystem-based Adaptation: A new pragmatic approach to buffering climate change impacts. Current Opinion in Environmental Sustainability, 5(1), 67–71. https://doi.org/10.1016/j.cosust.2012.12.001spa
dc.relation.referencesMwansasu, S. (2016). Causes and Perceptions of Environmental Change in the Mangroves of Rufiji Delta, Tanzania: Implications for Sustainable Livelihood and Conservation. https://urn.kb.se/resolve?urn=urn:nbn:se:su:diva-128074spa
dc.relation.referencesNarayanan, D., N, Karthi., S, Balamurugan., & Ramesh, D. A. (2023). Integrated ecosystem-based risk reduction into environmental-economic accounting in Gujarat coastal zones. In Climate Change, Community Response and Resilience (pp. 451–465). Elsevier. https://doi.org/10.1016/B978-0-443-18707-0.00024-2spa
dc.relation.referencesNyangoko, B. P., Berg, H., Mangora, M. M., Gullström, M., & Shalli, M. S. (2021). Community perceptions of mangrove ecosystem services and their determinants in the Rufiji Delta, Tanzania. Sustainability (Switzerland), 13(1), 1–23. Scopus. https://doi.org/10.3390/su13010063spa
dc.relation.referencesNyangoko, B. P., Berg, H., Mangora, M. M., Shalli, M. S., & Gullström, M. (2022a). Community perceptions of climate change and ecosystem-based adaptation in the mangrove ecosystem of the Rufiji Delta, Tanzania. Climate and Development, 14(10), 896–908. Scopus. https://doi.org/10.1080/17565529.2021.2022449spa
dc.relation.referencesNyangoko, B. P., Berg, H., Mangora, M. M., Shalli, M. S., & Gullström, M. (2022b). Local perceptions of changes in mangrove ecosystem services and their implications for livelihoods and management in the Rufiji Delta, Tanzania. Ocean & Coastal Management, 219, 106065. https://doi.org/10.1016/j.ocecoaman.2022.106065spa
dc.relation.referencesOdériz, I., Silva, R., Mortlock, T. R., & Mori, N. (2020). El Niño-Southern Oscillation Impacts on Global Wave Climate and Potential Coastal Hazards. Journal of Geophysical Research: Oceans, 125(12), e2020JC016464. https://doi.org/10.1029/2020JC016464spa
dc.relation.referencesOhira, W., Honda, K., Nagai, M., & Ratanasuwan, A. (2013). Mangrove stilt root morphology modeling for estimating hydraulic drag in tsunami inundation simulation. Trees, 27(1), 141–148. https://doi.org/10.1007/s00468-012-0782-8spa
dc.relation.referencesOlaya Requene, A. Y. (2022). El pacífico colombiano y las comunidades negras en el contexto de la firma del acuerdo de paz: Aportes al campo de los estudios afrocolombianos. Tabula Rasa, 41, 11–19. https://doi.org/10.25058/20112742.n41.01spa
dc.relation.referencesOsorio-Cano, J. D., Osorio, A. F., & Peláez-Zapata, D. S. (2019). Ecosystem management tools to study natural habitats as wave damping structures and coastal protection mechanisms. Ecological Engineering, 130, 282–295. https://doi.org/10.1016/j.ecoleng.2017.07.015spa
dc.relation.referencesOwuor, M. A., Mulwa, R., Otieno, P., Icely, J., & Newton, A. (2019). Valuing mangrove biodiversity and ecosystem services: A deliberative choice experiment in Mida Creek, Kenya. Ecosystem Services, 40, 101040. https://doi.org/10.1016/j.ecoser.2019.101040spa
dc.relation.referencesP, S., J. M, K., & S, K. (2024). A REVIEW ON ECOLOGICAL IMPORTANCE OF MANGROVES. In Dr. Anil Kumar, Dr. J. M. Koli, Dr. Ayushi Varshney, R. Kumar, Dr. Ashish Kumar, Dr. Kartikey Chaturvedi, Dr. Nitish Sharma, K. S. Balasaheb, Dr. Awanish Kumar Singh, Dr. Pramod Katti, Dr. Lakhesing Anandsing Girase, N. Faheem, Er. Mukul Sain, Dr. Manoj Kumar Sarma, Dr. Bipasha Mridha Ghosh, Dr. Pawan Kumar, Dr. Taale, Dr. Subbalakshmi, Dr. Himangshu Barman, … B. Rajasekaran (Eds.), Futuristic Trends in Agriculture Engineering & Food Sciences Volume 3 Book 15 (First, pp. 1–17). Iterative International Publisher, Selfypage Developers Pvt Ltd. https://doi.org/10.58532/V3BCAG15P1CH1spa
dc.relation.referencesPalacios, M. L., & Cantera, J. R. (2017). Mangrove timber use as an ecosystem service in the Colombian Pacific. Hydrobiologia, 803(1), 345–358. https://doi.org/10.1007/s10750-017-3309-xspa
dc.relation.referencesPascual, U., Balvanera, P., Díaz, S., Pataki, G., Roth, E., Stenseke, M., Watson, R. T., Başak Dessane, E., Islar, M., Kelemen, E., Maris, V., Quaas, M., Subramanian, S. M., Wittmer, H., Adlan, A., Ahn, S., Al-Hafedh, Y. S., Amankwah, E., Asah, S. T., … Yagi, N. (2017). Valuing nature’s contributions to people: The IPBES approach. Current Opinion in Environmental Sustainability, 26–27, 7–16. https://doi.org/10.1016/j.cosust.2016.12.006spa
dc.relation.referencesPeterson, G. D., Harmáčková, Z. V., Meacham, M., Queiroz, C., Jiménez-Aceituno, A., Kuiper, J. J., Malmborg, K., Sitas, N., & Bennett, E. M. (2018). Welcoming different perspectives in IPBES: “Nature’s contributions to people” and “Ecosystem services” Ecology and Society, 23(1), art39. https://doi.org/10.5751/ES-10134-230139spa
dc.relation.referencesPrahl, H. von, Cantera, J. R., & R, C. R. C. (1990). Manglares y hombres del Pacífico colombiano. COLCIENCIAS.spa
dc.relation.referencesQualitative and Quantitative Research Techniques for Humanitarian Needs Assessment. (2012, May 18). ACAPS. https://reliefweb.int/report/world/qualitative-and-quantitative-research-techniques-humanitarian-needs-assessmentspa
dc.relation.referencesQuang Bao, T. (2011). Effect of mangrove forest structures on wave attenuation in coastal Vietnam. Oceanologia, 53(3), 807–818. https://doi.org/10.5697/oc.53-3.807spa
dc.relation.referencesQueiroz, L. D. S., Rossi, S., Calvet-Mir, L., Ruiz-Mallén, I., García-Betorz, S., Salvà-Prat, J., & Meireles, A. J. D. A. (2017). Neglected ecosystem services: Highlighting the socio-cultural perception of mangroves in decision-making processes. Ecosystem Services, 26, 137–145. Scopus. https://doi.org/10.1016/j.ecoser.2017.06.013spa
dc.relation.referencesQuevedo, J. M. D., & Kohsaka, R. (2024). A systematic review of cultural ecosystem services of blue carbon ecosystems: Trends, gaps, and challenges in Asia and beyond. Marine Policy, 159, 105898. https://doi.org/10.1016/j.marpol.2023.105898spa
dc.relation.referencesQuevedo, J. M. D., Uchiyama, Y., & Kohsaka, R. (2020). Perceptions of the seagrass ecosystems for the local communities of Eastern Samar, Philippines: Preliminary results and prospects of blue carbon services. Ocean and Coastal Management, 191. Scopus. https://doi.org/10.1016/j.ocecoaman.2020.105181spa
dc.relation.referencesRao, N. S., Ghermandi, A., Portela, R., & Wang, X. (2015). Global values of coastal ecosystem services: A spatial economic analysis of shoreline protection values. Ecosystem Services, 11, 95–105. https://doi.org/10.1016/j.ecoser.2014.11.011spa
dc.relation.referencesRefulio-Coronado, S., Lacasse, K., Dalton, T., Humphries, A., Basu, S., Uchida, H., & Uchida, E. (2021). Coastal and Marine Socio-Ecological Systems: A Systematic Review of the Literature. Frontiers in Marine Science, 8, 648006. https://doi.org/10.3389/fmars.2021.648006spa
dc.relation.referencesRestrepo, E. (2016). Espacialidades afrodescendientes en el Pacífico Colombiano. In Territorios de gente Negra: Procesos, transformaciones y adaptationes: Ensayos sobre Colombia y Brasil.spa
dc.relation.referencesReyes-Arroyo, N., Camacho-Valdez, V., Saenz-Arroyo, A., & Infante-Mata, D. (2021). Socio-cultural analysis of ecosystem services provided by mangroves in La Encrucijada Biosphere Reserve, southeastern Mexico. Local Environment, 26(1), 86–109. https://doi.org/10.1080/13549839.2020.1867836spa
dc.relation.referencesRichards, D. R., & Friess, D. A. (2016). Rates and drivers of mangrove deforestation in Southeast Asia, 2000–2012. Proceedings of the National Academy of Sciences, 113(2), 344–349. https://doi.org/10.1073/pnas.1510272113spa
dc.relation.referencesRichardson, L., Loomis, J., Kroeger, T., & Casey, F. (2015). The role of benefit transfer in ecosystem service valuation. Ecological Economics, 115, 51–58. https://doi.org/10.1016/j.ecolecon.2014.02.018spa
dc.relation.referencesRodríguez-Rodríguez, J. A., Gonzalez-Polo, D., Manuel, J., & Otero, R. R. (n.d.). MEMORIAS DE LOS TALLERES DE CAPACITACIÓN EN EL MANEJO DEL SISTEMA DE INFORMACIÓN PARA LA GESTIÓN DE LOS MANGLARES DE COLOMBIA-SIGMA.spa
dc.relation.referencesRossi, S., & Soares, M. D. O. (2017). EFFECTS OF EL NIÑO ON THE COASTAL ECOSYSTEMS AND THEIR RELATED SERVICES. Mercator, 16(12), 1–16. https://doi.org/10.4215/rm2017.e16030spa
dc.relation.referencesRoy, S., Zafarullah, H., & Das, A. K. (2020). Unwrapping the memory box: Gendered livelihoods in a forest community in the Sundarbans, Bangladesh. Asian Journal of Social Science, 48(3–4), 375–394. Scopus. https://doi.org/10.1163/15685314-04803010spa
dc.relation.referencesSánchez-Núñez, D. A., Bernal, G., & Mancera Pineda, J. E. (2019). The Relative Role of Mangroves on Wave Erosion Mitigation and Sediment Properties. Estuaries and Coasts, 42(8), 2124–2138. https://doi.org/10.1007/s12237-019-00628-9spa
dc.relation.referencesSánchez-Páez, H., Álvarez-León, R., Pinto-Nolla, F., Sanchez-Alfarez, A., Pinto-Renjifo, J., Acosta-Peñaloza, M., & García-Hansen Honkala, I. (1997). Diagnóstico y zonificación preliminar de los manglares del Pacífico de Colombia.spa
dc.relation.referencesSathirathai, S., & Barbier, E. (2001). VALUING MANGROVE CONSERVATION IN SOUTHERN THAILAND. Contemporary Economic Policy, 19(2), 109–122. https://doi.org/10.1111/j.1465-7287.2001.tb00054.xspa
dc.relation.referencesScemama, P., Regnier, E., Blanchard, F., & Thébaud, O. (2022). Ecosystem Services Assessment for the Conservation of Mangroves in French Guiana Using Fuzzy Cognitive Mapping. Frontiers in Forests and Global Change, 4. Scopus. https://doi.org/10.3389/ffgc.2021.769182spa
dc.relation.referencesSchlüter, A., Van Assche, K., Hornidge, A.-K., & Văidianu, N. (2020). Land-sea interactions and coastal development: An evolutionary governance perspective. Marine Policy, 112, 103801. https://doi.org/10.1016/j.marpol.2019.103801spa
dc.relation.referencesSelvaraj, J. J., & Gallego Pérez, B. E. (2023). Estimating mangrove aboveground biomass in the Colombian Pacific coast: A multisensor and machine learning approach. Heliyon, 9(11), e20745. https://doi.org/10.1016/j.heliyon.2023.e20745spa
dc.relation.referencesSievers, M., Brown, C. J., McGowan, J., Turschwell, M. P., Buelow, C. A., Holgate, B., Pearson, R. M., Adame, M. F., Andradi-Brown, D. A., Arnell, A., Mackey, B. G., Ermgassen, P. S. E. zu, Gosling, J., McOwen, C. J., Worthington, T. A., & Connolly, R. M. (2023). Co-occurrence of biodiversity, carbon storage, coastal protection, and fish and invertebrate production to inform global mangrove conservation planning. Science of The Total Environment, 904, 166357. https://doi.org/10.1016/j.scitotenv.2023.166357spa
dc.relation.referencesSilver, J. M., Arkema, K. K., Griffin, R. M., Lashley, B., Lemay, M., Maldonado, S., Moultrie, S. H., Ruckelshaus, M., Schill, S., Thomas, A., Wyatt, K., & Verutes, G. (2019). Advancing Coastal Risk Reduction Science and Implementation by Accounting for Climate, Ecosystems, and People. Frontiers in Marine Science, 6. https://www.frontiersin.org/articles/10.3389/fmars.2019.00556spa
dc.relation.referencesSlovic, P. (1987). Perception of Risk. Science, 236(4799), 280–285. https://doi.org/10.1126/science.3563507spa
dc.relation.referencesSlovic, P., & Peters, E. (2006). Risk Perception and Affect. Current Directions in Psychological Science, 15(6), 322–325. https://doi.org/10.1111/j.1467-8721.2006.00461.xspa
dc.relation.referencesSpalding, M. D., McIvor, A. L., Beck, M. W., Koch, E. W., Möller, I., Reed, D. J., Rubinoff, P., Spencer, T., Tolhurst, T. J., Wamsley, T. V., van Wesenbeeck, B. K., Wolanski, E., & Woodroffe, C. D. (2014). Coastal Ecosystems: A Critical Element of Risk Reduction. Conservation Letters, 7(3), 293–301. https://doi.org/10.1111/conl.12074spa
dc.relation.referencesSpalding, M. D., Ruffo, S., Lacambra, C., Meliane, I., Hale, L. Z., Shepard, C. C., & Beck, M. W. (2014). The role of ecosystems in coastal protection: Adapting to climate change and coastal hazards. Ocean & Coastal Management, 90, 50–57. https://doi.org/10.1016/j.ocecoaman.2013.09.007spa
dc.relation.referencesSpalding, M., McIvor, A. L., Tonneijck, F. H., & Van Eijk, P. (2014). Mangroves for coastal defence. Guidelines for coastal managers and policy makers. Wetlands International and The Natura Conservancy. https://www.nature.org/media/oceansandcoasts/mangroves-for-coastal-defence.pdfspa
dc.relation.referencesStaplin, N., Herrington, W. G., Judge, P. K., Reith, C. A., Haynes, R., Landray, M. J., Baigent, C., & Emberson, J. (2017). Use of Causal Diagrams to Inform the Design and Interpretation of Observational Studies: An Example from the Study of Heart and Renal Protection (SHARP). Clinical Journal of the American Society of Nephrology, 12(3), 546–552. https://doi.org/10.2215/CJN.02430316spa
dc.relation.referencesStrain, E. M. A., Kompas, T., Boxshall, A., Kelvin, J., Swearer, S., & Morris, R. L. (2022). Assessing the coastal protection services of natural mangrove forests and artificial rock revetments. Ecosystem Services, 55, 101429. https://doi.org/10.1016/j.ecoser.2022.101429spa
dc.relation.referencesSu, J., & Gasparatos, A. (2023). Perceptions about mangrove restoration and ecosystem services to inform ecosystem-based restoration in Large Xiamen Bay, China. Landscape and Urban Planning, 235. Scopus. https://doi.org/10.1016/j.landurbplan.2023.104763spa
dc.relation.referencesSuarez, A., Ruiz-Agudelo, C. A., Arias-Arévalo, P., Flórez-Yepes, G. Y., Arciniegas, N., Vargas-Marín, L. A., Marulanda, A., Ramirez, J., Castro-Escobar, E., Bastidas, J. C., & Blanco, D. (2022). Recognizing, normalizing and articulating: An approach to highlight plural values of water ecosystem services in Colombia. Heliyon, 8(9), e10622. https://doi.org/10.1016/j.heliyon.2022.e10622spa
dc.relation.referencesThelen, E., & Smith, L. B. (2007). Dynamic Systems Theories. In W. Damon & R. M. Lerner (Eds.), Handbook of Child Psychology (1st ed.). Wiley. https://doi.org/10.1002/9780470147658.chpsy0106spa
dc.relation.referencesTriyanti, A., Walz, Y., Marfai, M. A., Renaud, F., & Djalante, R. (2017). Ecosystem-Based Disaster Risk Reduction in Indonesia: Unfolding Challenges and Opportunities. In R. Djalante, M. Garschagen, F. Thomalla, & R. Shaw (Eds.), Disaster Risk Reduction in Indonesia (pp. 445–467). Springer International Publishing. https://doi.org/10.1007/978-3-319-54466-3_18spa
dc.relation.referencesUribe-Castañeda, N., Satizabal, C. A., Herrera-Orozco, L., & Kintz, J. R. C. (2020). Ecosystems services vulnerability of Uramba Marine Protected Area. Boletín de Investigaciones Marinas y Costeras, 49(SuplEsp), Article SuplEsp. https://doi.org/10.25268/bimc.invemar.2020.49.SuplEsp.1055spa
dc.relation.referencesValderrama, E. (2023). Análisis del cambio morfológico en la línea de costa de la bahía de Buenaventura (Pacífico Colombiano) a través de sensores remotos de 2016 a 2021. [Universidad de Antioquia]. https://bibliotecadigital.udea.edu.co/bitstream/10495/37118/2/EisinguerKevin_2023_An%C3%A1lisisMorfol%C3%B3gicoBuenaventura.pdfspa
dc.relation.referencesvan Bijsterveldt, C. E. J., van Wesenbeeck, B. K., van der Wal, D., Afiati, N., Pribadi, R., Brown, B., & Bouma, T. J. (2020). How to restore mangroves for greenbelt creation along eroding coasts with abandoned aquaculture ponds. Estuarine, Coastal and Shelf Science, 235, 106576. https://doi.org/10.1016/j.ecss.2019.106576spa
dc.relation.referencesvan der Westhuysen, A. J., Zijlema, M., & Battjes, J. A. (2007). Nonlinear saturation-based whitecapping dissipation in SWAN for deep and shallow water. Coastal Engineering, 54(2), 151–170. https://doi.org/10.1016/j.coastaleng.2006.08.006spa
dc.relation.referencesvan Hespen, R., Hu, Z., Borsje, B., De Dominicis, M., Friess, D. A., Jevrejeva, S., Kleinhans, M. G., Maza, M., van Bijsterveldt, C. E. J., Van der Stocken, T., van Wesenbeeck, B., Xie, D., & Bouma, T. J. (2023). Mangrove forests as a nature-based solution for coastal flood protection: Biophysical and ecological considerations. Water Science and Engineering, 16(1), 1–13. https://doi.org/10.1016/j.wse.2022.10.004spa
dc.relation.referencesVanegas G, C. A., Osorio, A. F., & Urrego, L. E. (2019). Wave dissipation across a Rhizophora mangrove patch on a Colombian Caribbean Island: An experimental approach. Ecological Engineering, 130, 271–281. https://doi.org/10.1016/j.ecoleng.2017.07.014spa
dc.relation.referencesVardi Venkateswarlu, Chenji Venkatrayulu, Adelina Jaya Harsha M, & Govardhan Reddy G. (2023). Review on mangrove restoration: Re-greening the sea coast. GSC Biological and Pharmaceutical Sciences, 22(3), 130–143. https://doi.org/10.30574/gscbps.2023.22.3.0112spa
dc.relation.referencesVignola, R., Locatelli, B., Martinez, C., & Imbach, P. (2009). Ecosystem-based adaptation to climate change: What role for policy-makers, society and scientists? Mitigation and Adaptation Strategies for Global Change, 14(8), 691–696. https://doi.org/10.1007/s11027-009-9193-6spa
dc.relation.referencesVillanueva, A. J., Vernaza-Quiñónez, L., & Granado-Díaz, R. (2023). Disentangling the heterogeneity of mangrove managers’ perception of ecosystem services. Ecological Economics, 213. Scopus. https://doi.org/10.1016/j.ecolecon.2023.107969spa
dc.relation.referencesViveros Duiza, J. L. (2021). Evaluación de técnica de restauración de Manglares en Punta Soldado basado en la implementación de la Resolución 1263 del 2018 de Colombia. Pontificia Universidad Javeriana de Cali.spa
dc.relation.referencesVo, Q. T., Kuenzer, C., Vo, Q. M., Moder, F., & Oppelt, N. (2012). Review of valuation methods for mangrove ecosystem services. Ecological Indicators, 23, 431–446. https://doi.org/10.1016/j.ecolind.2012.04.022spa
dc.relation.referencesVos, K., Harley, M. D., Turner, I. L., & Splinter, K. D. (2023). Pacific shoreline erosion and accretion patterns controlled by El Niño/Southern Oscillation. Nature Geoscience, 16(2), 140–146. https://doi.org/10.1038/s41561-022-01117-8spa
dc.relation.referencesWang, Y., Yin, Z., & Liu, Y. (2022). Laboratory study on the drag coefficient for mangrove forests in regular waves. Ocean Engineering, 255, 111522. https://doi.org/10.1016/j.oceaneng.2022.111522spa
dc.relation.referencesWard, R. D., Friess, D. A., Day, R. H., & Mackenzie, R. A. (2016). Impacts of climate change on mangrove ecosystems: A region by region overview. Ecosystem Health and Sustainability, 2(4), e01211. https://doi.org/10.1002/ehs2.1211spa
dc.relation.referencesWaryszak, P., Gavoille, A., Whitt, A. A., Kelvin, J., & Macreadie, P. I. (2021). Combining gray and green infrastructure to improve coastal resilience: Lessons learnt from hybrid flood defenses. Coastal Engineering Journal, 63(3), 335–350. https://doi.org/10.1080/21664250.2021.1920278spa
dc.relation.referencesWinterwerp, J. C., Albers, T., Anthony, E. J., Friess, D. A., Mancheño, A. G., Moseley, K., Muhari, A., Naipal, S., Noordermeer, J., Oost, A., Saengsupavanich, C., Tas, S. A. J., Tonneijck, F. H., Wilms, T., Van Bijsterveldt, C., Van Eijk, P., Van Lavieren, E., & Van Wesenbeeck, B. K. (2020). Managing erosion of mangrove-mud coasts with permeable dams – lessons learned. Ecological Engineering, 158, 106078. https://doi.org/10.1016/j.ecoleng.2020.106078spa
dc.relation.referencesWorld Bank Group. (2016). Managing Coasts with Natural Solutions: Guidelines for Measuring and Valuing the Coastal Protection Services of Mangroves and Coral Reefs. World Bank, Washington, DC. https://doi.org/10.1596/23775spa
dc.relation.referencesYanagisawa, H., Koshimura, S., Miyagi, T., & Imamura, F. (2010). Tsunami damage reduction performance of a mangrove forest in Banda Aceh, Indonesia inferred from field data and a numerical model. Journal of Geophysical Research: Oceans, 115(C6), 2009JC005587. https://doi.org/10.1029/2009JC005587spa
dc.relation.referencesZamboni, N. S., Prudêncio, M. da C., Amaro, V. E., Matos, M. de F. A. de, Verutes, G. M., & Carvalho, A. R. (2022). The protective role of mangroves in safeguarding coastal populations through hazard risk reduction: A case study in northeast Brazil. Ocean & Coastal Management, 229, 106353. https://doi.org/10.1016/j.ocecoaman.2022.106353spa
dc.rights.accessrightsinfo:eu-repo/semantics/openAccessspa
dc.rights.licenseAtribución-NoComercial-SinDerivadas 4.0 Internacionalspa
dc.rights.urihttp://creativecommons.org/licenses/by-nc-nd/4.0/spa
dc.subject.ddc330 - Economía::333 - Economía de la tierra y de la energíaspa
dc.subject.ddc570 - Biología::577 - Ecologíaspa
dc.subject.lembEcosistemas - Costa Pacífica (Colombia)
dc.subject.lembManglares - Costa Pacífica (Colombia)
dc.subject.lembEvaluación del impacto ambiental - Costa Pacífica (Colombia)
dc.subject.lembProtección del medio ambiente - Costa Pacífica (Colombia)
dc.subject.lembInfluencia del medio ambiente- Costa Pacífica (Colombia)
dc.subject.proposalManglaresspa
dc.subject.proposalContribuciones de la Naturaleza a las Personasspa
dc.subject.proposalSistemas socio-ecológicosspa
dc.subject.proposalProtección costeraspa
dc.subject.proposalMangroveseng
dc.subject.proposalNature contributions to peopleeng
dc.subject.proposalsocial-ecological systemseng
dc.subject.proposalcoastal protectioneng
dc.titleManglares para la protección de socio-ecosistemas costeros. Caso de estudio Punta Soldado, Pacífico Colombianospa
dc.title.translatedMangroves for protection of coastal socialecological systems. Case study Punta Soldado, Colombia’s Pacific Coasteng
dc.typeTrabajo de grado - Maestríaspa
dc.type.coarhttp://purl.org/coar/resource_type/c_bdccspa
dc.type.coarversionhttp://purl.org/coar/version/c_ab4af688f83e57aaspa
dc.type.contentTextspa
dc.type.driverinfo:eu-repo/semantics/masterThesisspa
dc.type.redcolhttp://purl.org/redcol/resource_type/TMspa
dc.type.versioninfo:eu-repo/semantics/acceptedVersionspa
dcterms.audience.professionaldevelopmentEstudiantesspa
dcterms.audience.professionaldevelopmentGrupos comunitariosspa
dcterms.audience.professionaldevelopmentInvestigadoresspa
dcterms.audience.professionaldevelopmentMaestrosspa
dcterms.audience.professionaldevelopmentPúblico generalspa
dcterms.audience.professionaldevelopmentResponsables políticosspa
oaire.accessrightshttp://purl.org/coar/access_right/c_abf2spa
oaire.fundernameUniversidad Nacional de Colombiaspa
oaire.fundernamePrograma de Soluciones Costerasspa

Archivos

Bloque original

Mostrando 1 - 1 de 1
Cargando...
Miniatura
Nombre:
1090508950.2024.pdf
Tamaño:
4.74 MB
Formato:
Adobe Portable Document Format
Descripción:
Tesis de Maestría en Ingeniería - Recursos Hidráulicos

Bloque de licencias

Mostrando 1 - 1 de 1
Cargando...
Miniatura
Nombre:
license.txt
Tamaño:
5.74 KB
Formato:
Item-specific license agreed upon to submission
Descripción: