Thermo-sensitive actuator capabilities assessment of a composite material based on a two-way shape memory semicrystalline polymer

dc.contributor.advisorColorado Lopera, Henry Alonso
dc.contributor.advisorRestrepo Gutierrez, Juan Camilo
dc.contributor.authorRodríguez Villegas, John Edison
dc.contributor.researchgroupMaterialesspa
dc.date.accessioned2021-05-21T15:06:05Z
dc.date.available2021-05-21T15:06:05Z
dc.date.issued2018
dc.description.abstractEvidence suggests that energy efficiency is one of the most crucial factors to be addressed in XXI century by building industry, and the study of the building envelope, which includes passive systems of dynamic activation that works with intrinsic properties of materials has risen significantly since the early 2000s as alternative. Hence, there is a growing body of literature that recognizes the advantages of polymers among others stimulus sensitive materials to define systems of dynamic activation. The adaptive building envelopes state of the art, as well as, semicrystalline shape memory polymers, is assessed in this work. In this way, the thermosensitive potential of a composite material based on a bidirectional shape memory polymer that could be used in responsive building skins was studied. Crosslinked ethylene-vinyl acetate copolymer prestressed, and functionalized sheets were encapsulated into a polyurethane rubber matrix to obtain a thermosensitive functional composite. The programming process which enhance the shape memory effect and the stability of the phenomenon through thermal cycling were studied, as well as, actuator capacity.eng
dc.description.abstractLa evidencia sugiere que la eficiencia energética es uno de los factores más importantes a abordar en el siglo XXI por la industria de la construcción. Es así como el estudio de la envolvente del edificio que incluye sistemas pasivos de activación dinámica con propiedades intrínsecas de los materiales ha aumentado desde el 2000 como alternativa. Por lo tanto, existe un cuerpo creciente de literatura que reconoce las ventajas de los polímeros sobre otros materiales sensibles a estímulos para definir sistemas de activación dinámica. En este trabajo se evalúa el estado del arte de las envolventes de construcción adaptables, así como los polímeros semi cristalinos con memoria de forma. De esta forma, se estudió el potencial termosensible de un material compuesto basado en un polímero de memoria de forma bidireccional que podría usarse en pieles arquitectónicas adaptativas. Copolímero reticulado de etileno-acetato de vinilo pretensado, y láminas funcionalizadas se encapsularon en una matriz de caucho de poliuretano para obtener un compuesto funcional termosensible. Se estudió el proceso de programación que mejora el efecto de memoria de forma y la estabilidad del fenómeno a través del ciclo térmico, así como la capacidad del actuador. (Texto tomado de la fuente)spa
dc.description.degreelevelMaestríaspa
dc.description.degreenameMagister en Construcciónspa
dc.description.researchareaMateriales de construcciónspa
dc.format.extent139 páginasspa
dc.format.mimetypeapplication/pdfspa
dc.identifier.instnameUniversidad Nacional - Sede Medellínspa
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/79546
dc.language.isoengspa
dc.publisherUniversidad Nacional de Colombiaspa
dc.publisher.branchUniversidad Nacional de Colombia - Sede Medellínspa
dc.publisher.departmentEscuela de construcciónspa
dc.publisher.facultyFacultad de Arquitecturaspa
dc.publisher.placeMedellín, Colombiaspa
dc.publisher.programMedellín - Arquitectura - Maestría en Construcciónspa
dc.relation.references[1] Levermore GJ., “A review of the IPCC assessment report four, part 1: the IPCC process and greenhouse gas emission trends from buildings worldwide. Build Serv Eng Res Technol 2008;29:349e61.v.”spa
dc.relation.references[2] International Energy Agency (IEA), “Energy Technologies Perspectives: Scenarios and Strategies to 2050, OECD/IEA,” Paris, 2008.spa
dc.relation.references[3] C. Muñoz, C. Zaror, G. Saelzer, and A. Cuchí, “Estudio del flujo energético en el ciclo de vida de una vivienda y su implicancia en las emisiones de gases de efecto invernadero, durante la fase de construcción Caso Estudio: Vivienda Tipología Social. Región del Biobío, Chile,” Rev. Constr., vol. 11, no. 3, pp. 125–145, Dec. 2012.spa
dc.relation.references[4] Y. Song, J. Sun, J. Li, and D. Xie, “Towards Net Zero Energy Building: Collaboration-based Sustainable Design and Practice of the Beijing Waterfowl Pavilion,” Energy Procedia, vol. 57, pp. 1773–1782, 2014.spa
dc.relation.references[5] I. Sartori, A. Napolitano, and K. Voss, “Net zero energy buildings: A consistent definition framework,” Energy Build., vol. 48, pp. 220–232, May 2012.spa
dc.relation.references[6] European Parliament, “Directive 2010/31/EU Energy performance of buildings. Off J Eur Union 2010. L 153/13-L 153-35.,” 19-May-201AD.spa
dc.relation.references[7] European Parliament, “Concerted action (CA) Energy performance of buildings directive (EPBD). www.epbd-ca.eu.”spa
dc.relation.references[8] European Parliament, “Directive 2012/27/EU.”spa
dc.relation.references[9] G. S. Brager and R. J. de Dear, “Thermal adaptation in the built environment: a literature review,” Energy Build., vol. 27, no. 1, pp. 83–96, Feb. 1998.spa
dc.relation.references[10] B. Kolarevic and V. Parlac, Eds., Building dynamics: exploring architecture of change. London; New York: Routledge, 2015.spa
dc.relation.references[11] J. Douglas, Building adaptation, 2nd ed. Amsterdam: Butterworth-Heinemann, Elsevier, 2006.spa
dc.relation.references[12] G. Koçlar, A. K. Yener, and N. T. Bayazit, “Building envelope design with the objective to ensure thermal, visual and acoustic comfort conditions,” Build. Environ., vol. 39, no. 3, pp. 281–287, Mar. 2004.spa
dc.relation.references[13] S. B. Sadineni, S. Madala, and R. F. Boehm, “Passive building energy savings: A review of building envelope components,” Renew. Sustain. Energy Rev., vol. 15, no. 8, pp. 3617–3631, Oct. 2011.spa
dc.relation.references[14] S. di Salvo, “Smart Materials in Architecture,” Int. J. Eng. Res. Afr., vol. 23, pp. 72–79, Apr. 2016.spa
dc.relation.references[15] R. M. Fortmeyer and C. D. Linn, Kinetic architecture: designs for active envelopes. Mulgrave, Victoria: Images Publishing Group, 2014.spa
dc.relation.references[16] M. A. Nikolinakou, A. J. Tallon, and J. A. Ochsendor, “Structure and Form of Early Gothic Flying Buttresses,” Rev. Eur. Génie Civ., vol. 9, no. 9–10, pp. 1191–1217, 2005.spa
dc.relation.references[17] P. Overy, Light, air & openness: modern architecture between the wars. London: Thames & Hudson, 2007.spa
dc.relation.references[18] J. W. Bertens, The idea of the postmodern: a history, Reprinted. London: Routledge, 1996.spa
dc.relation.references[19] D. L. Morse and J. W. Evenson, “Welcome to the Glass Age,” Int. J. Appl. Glass Sci., vol. 7, no. 4, pp. 409–412, Dec. 2016.spa
dc.relation.references[20] M. Wigginton, Glass in architecture. London: Phaidon, 2004.spa
dc.relation.references[21] W. Blaser, Mies van der Rohe, 6th, expanded and rev. ed ed. Basel ; Boston: Birkhauser Verlag, 1997.spa
dc.relation.references[22] H. ACHTEN, “One and Many: An Agent Perspective on Interactive Architecture,” presented at the 34th Annual Conference of the Association for Computer Aided Design in Architecture (ACADIA), Los Angeles, California, pp. 479–486.spa
dc.relation.references[23] M. Barozzi, J. Lienhard, A. Zanelli, and C. Monticelli, “The Sustainability of Adaptive Envelopes: Developments of Kinetic Architecture,” Procedia Eng., vol. 155, pp. 275–284, 2016.spa
dc.relation.references[24] M. Perino and V. Serra, “Switching from static to adaptable and dynamic building envelopes: A paradigm shift for the energy efficiency in buildings,” J. Facade Des. Eng., vol. 3, no. 2, pp. 143–163, Oct. 2015.spa
dc.relation.references[25] G. C. Henriques, “Responsive systems, relevance, state of the art and developments,” presented at the 19th Conference of the Iberoamerican Society of Digital Graphics, Florianópolis, Brasil, 2015, vol. 1, pp. 200–206.spa
dc.relation.references[26] G. Hoover and W. Rempfer, “Closed loop control with data acquisition systems,” in Analog Circuit Design, Elsevier, 2015, pp. 807–808.spa
dc.relation.references[27] J. Frazer, “An Evolutionary Architecture.” 1995.spa
dc.relation.references[28] AEDAS, Al Bahar Towers, The Abu Dhabi Investment Council. 2012.spa
dc.relation.references[29] Jean Nouvel, Architecture-Studio, Arab World Institute. 1987.spa
dc.relation.references[30] E. Giselbrecht, Kiefer Technic Showroom. 2007.spa
dc.relation.references[31] JSWD Architekten and Chaix & Morel et Associés, Q1 ThyssenKrupp Quarter. 2010.spa
dc.relation.references[32] S. Godsell and H. Franklin, RMIT Design Hub. 2012.spa
dc.relation.references[33] SOMA, One Ocean. 2012.spa
dc.relation.references[34] Y. Su, “Arab Worl Institute EVDA 621 Formal Strategies in architecture, Case Study Analysis.” .spa
dc.relation.references[35] S. Attia, “Evaluation of adaptive facades: The case study of Al Bahr Towers in the UAE,” QScience Connect, vol. 2017, no. 2, p. 6, Oct. 2017.spa
dc.relation.references[36] M. Meagher, “Responsive Architecture and the Problem of Obsolescence,” Int. J. Archit. Res. ArchNet-IJAR, vol. 8, no. 3, p. 95, Nov. 2014.spa
dc.relation.references[37] D. Aelenei, L. Aelenei, and C. P. Vieira, “Adaptive Façade: Concept, Applications, Research Questions,” Energy Procedia, vol. 91, pp. 269–275, Jun. 2016.spa
dc.relation.references[38] B. L. H. Hasselaar, “Climate Adaptive Skins: towards the new energy-efficient façade,” 2006, vol. I, pp. 351–360.spa
dc.relation.references[39] L. Sun et al., “Stimulus-responsive shape memory materials: A review,” Mater. Des., vol. 33, pp. 577–640, Jan. 2012.spa
dc.relation.references[40] B. Ogwezi, R. Bonser, G. Cook, and J. Sakula, “Multifunctional, Adaptable Facades,” presented at the TSBE EngD Conference, University of Reading, 2011.spa
dc.relation.references[41] R. Ng, Performative Materials in Architecture and Design. Bristol: Intellect Ltd, 2013.spa
dc.relation.references[42] L. A. Momoda, “The future of engineering materials: Multifunction for performance: Tailored structure,” presented at the tenth annual symposium on Frontiers of Engineering, Washington D.C, pp. 47–52.spa
dc.relation.references[43] A. Ritter, Smart materials in architecture, interior architecture and design. Basel ; Boston: Birkhäuser, 2007.spa
dc.relation.references[44] A. Maragkoudaki, “No-Mech Kinetic Responsive Architecture: Kinetic Responsive Architecture with No Mechanical Parts,” 2013, pp. 145–150.spa
dc.relation.references[45] D. Kim Sung, “Skin Deep: Breathing Life into the Layer between Man and Nature.” The American Institute of Architects, 2008.spa
dc.relation.references[46] C. Doumpioti, “Responsive and Autonomous Material Interfaces,” in ACADIA 11: Integration through Computation, Banff, Alberta, 2011, pp. 318–325.spa
dc.relation.references[47] R. C. G. M. Loonen, F. Favoino, J. L. M. Hensen, and M. Overend, “Review of current status, requirements and opportunities for building performance simulation of adaptive facades,” J. Build. Perform. Simul., vol. 10, no. 2, pp. 205–223, Mar. 2017.spa
dc.relation.references[48] A. Aksamija, Integrating innovation in architecture: design, methods and technology for progressive practice and research. West Sussex, United Kingdom: Wiley, 2016.spa
dc.relation.references[49] W.-G. Drossel, H. Kunze, A. Bucht, L. Weisheit, and K. Pagel, “Smart3 – Smart Materials for Smart Applications,” Procedia CIRP, vol. 36, pp. 211–216, 2015.spa
dc.relation.references[50] J. Daveiga and P. Ferreira, “Smart and Nano Materials in Architecture,” presented at the 2005 Annual Conference of the Association for Computer Aided Design In Architecture, Savannah, Georgia, 2005, pp. 58–67.spa
dc.relation.references[51] R.C.G.M. Loonen et al., “Design for façade adaptability – Towards a unified and systematic characte,” presented at the 10th Conference on Advanced Building Skins, Bern, Switzerland, 2015, pp. 1284–1294.spa
dc.relation.references[52] Bahar BASARIR and M. Cem ALTUN, “A Classification Approach for Adaptive Façades,” presented at the Interdiciplinary Perspectives for Future Building Envelopes, Istanbul, Turkey, 2017.spa
dc.relation.references[53] F. Fiorito et al., “Shape morphing solar shadings: A review,” Renew. Sustain. Energy Rev., vol. 55, pp. 863–884, Mar. 2016.spa
dc.relation.references[54] D. Correa Zuluaga and A. Menges, “3D Printed Hygroscopic Programmable Material Systems,” MRS Proc., vol. 1800, 2015.spa
dc.relation.references[55] Nicola Augustin, “Motion with Moisture: Creating Passive Dynamic Envelope Systems Using the Hygroscopic Properties of Wood Veneer,” Master Thesis, University of Waterloo, Ontario, Canada, 2018.spa
dc.relation.references[56] C. Chao, Reacting architectural surface. 2015.spa
dc.relation.references[57] B. Torres, “Programmable Matter Hygroscopic actuation of multidirectional lattice structures,” Master Thesis, University of Stuttgart, Stuttgart, Germany, 2014.spa
dc.relation.references[58] D. Wood, C. Vailati, A. Menges, and M. Rüggeberg, “Hygroscopically actuated wood elements for weather responsive and self-forming building parts – Facilitating upscaling and complex shape changes,” Constr. Build. Mater., vol. 165, pp. 782–791, Mar. 2018.spa
dc.relation.references[59] C. Vailati, E. Bachtiar, P. Hass, I. Burgert, and M. Rüggeberg, “An autonomous shading system based on coupled wood bilayer elements,” Energy Build., vol. 158, pp. 1013–1022, Jan. 2018.spa
dc.relation.references[60] A. Y. Kyriakou, A. Potter, and W. Zhao, “SoftSpaces.” Architectural Association AA, London, 2016.spa
dc.relation.references[61] E. Mitrofanova, A. Rathee, and P. Santayanon, “hydroceramic,” Master Thesis, Institute for advanced architecture of Catalonia, Barcelona, 2014.spa
dc.relation.references[62] I. Ayala Castro, M. Manosong, and Y. C. Chang, “Water-driven Breathing skin,” Master Thesis, Institute for advanced architecture of Catalonia, Barcelona, 2017.spa
dc.relation.references[63] L. Roth, “Hydromembrane,” Master Thesis, Institute for advanced architecture of Catalonia, Barcelona, 2015.spa
dc.relation.references[64] A. Garcia Garcia, M. Srinivas, and M. A. Juarez, “Thermatrix bimetals,” Master Thesis, Institute for advanced architecture of Catalonia, Barcelona, 2014.spa
dc.relation.references[65] S. Verma and P. Devadass, “adaptive[skins]: Responsive building skin systems based on tensegrity principles,” in Future Traditions, Portugal, 2013, pp. 155–170.spa
dc.relation.references[66] V. Sushant and D. Pradeep, “Adaptive [skins]: Adaptation through smart systems,” presented at the 7th International Conference Proceedings of the Arab Society for Computer Aided Architectural Design, Jeddah, Kingdom of Saudi Arabia, 2014, pp. 275–289.spa
dc.relation.references[67] N. Diniz, B. Cesar, S. D. Miguel, and T. Alasdair, “Morphosis: A responsive membrane,” presented at the 12th International Conference on Computer Aided Architectural Design Futures, Sydney, Australia, 2007, pp. 489–498.spa
dc.relation.references[68] M. Formentini and S. Lenci, “An innovative building envelope (kinetic façade) with Shape Memory Alloys used as actuators and sensors,” Autom. Constr., vol. 85, pp. 220–231, Jan. 2018.spa
dc.relation.references[69] S. Abdelmohsen, P. Massoud, and A. Elshafei, “Using Tensegrity and Folding to Generate Soft Responsive Architectural Skins,” in Complexity & Simplicity, Finland, 2016, vol. 01, pp. 529–536.spa
dc.relation.references[70] C. K. Khoo and F. Salim, “Responsive Materiality for Morphing Architectural Skins,” presented at the 33rd Annual Conference of the Association for Computer Aided Design in Architecture (ACADIA), Cambridge, Ontario, 2013, pp. 243–252.spa
dc.relation.references[71] C. K. Khoo, J. Burry, and M. Burry, “Soft responsive kinetic system: An elastic transformable architectural skin for climatic and visual control,” presented at the Annual Conference of the Association for Computer Aided Design in Architecture (ACADIA 11), Bangff, Canada, 2011, pp. 334–341.spa
dc.relation.references[72] C. K. Khoo and F. Salim, “A responsive morphing media skin,” in Beyond codes and pixels, Hong Kong, 2012, pp. 517–526.spa
dc.relation.references[73] C. K. Khoo, F. Salim, and J. Burry, “Designing Architectural Morphing Skins with Elastic Modular Systems,” Int. J. Archit. Comput., vol. 9, no. 4, pp. 397–419, Dec. 2011.spa
dc.relation.references[74] J. W. Jun, M. Silverio, J. A. Llubia, A. Markopoulou, A. Chronis, and A. Dubor, “Remembrane: A Shape Changing Adaptive Structure,” presented at the 7th International Conference, CAAD Futures 2017, Proceedings, Istanbul, Turkey, 2017, pp. 180–198.spa
dc.relation.references[75] J. W. Jun, J. Alcover, and M. Silverio, “Remembrane,” Master Thesis, Institute for advanced architecture of Catalonia, Barcelona, 2015.spa
dc.relation.references[76] N. Gonzales and M. Shreyas, “Self - Adaptive membrane - A passive kinetic system,” Master Thesis, Institute for advanced architecture of Catalonia, Barcelona, 2015.spa
dc.relation.references[77] C. Ji et al., “Al-doped VO 2 films as smart window coatings: Reduced phase transition temperature and improved thermochromic performance,” Sol. Energy Mater. Sol. Cells, vol. 176, pp. 174–180, Mar. 2018.spa
dc.relation.references[78] M. Zhu, H. Qi, B. Wang, H. Wang, T. Guan, and D. Zhang, “Thermochromism of vanadium dioxide films controlled by the thickness of ZnO buffer layer under low substrate temperature,” J. Alloys Compd., vol. 740, pp. 844–851, Apr. 2018.spa
dc.relation.references[79] J. B. MacChesney and H. J. Guggenheim, “Growth and electrical properties of vanadium dioxide single crystals containing selected impurity ions,” J. Phys. Chem. Solids, vol. 30, no. 2, pp. 225–234, Feb. 1969.spa
dc.relation.references[80] W. Burkhardt, T. Christmann, B. . Meyer, W. Niessner, D. Schalch, and A. Scharmann, “W- and F-doped VO 2 films studied by photoelectron spectrometry,” Thin Solid Films, vol. 345, no. 2, pp. 229–235, May 1999.spa
dc.relation.references[81] Z. Cao, Y. Lu, X. Xiao, Y. Zhan, H. Cheng, and G. Xu, “Tunable simultaneously visible-light and near-infrared transmittance for VO 2 /SiO 2 composite films to enhance thermochromic properties,” Mater. Lett., vol. 209, pp. 609–612, Dec. 2017.spa
dc.relation.references[82] S. Hoffmann, E. S. Lee, and C. Clavero, “Examination of the technical potential of near-infrared switching thermochromic windows for commercial building applications,” Sol. Energy Mater. Sol. Cells, vol. 123, pp. 65–80, Apr. 2014.spa
dc.relation.references[83] V. Costanzo, G. Evola, and L. Marletta, “Thermal and visual performance of real and theoretical thermochromic glazing solutions for office buildings,” Sol. Energy Mater. Sol. Cells, vol. 149, pp. 110–120, May 2016.spa
dc.relation.references[84] E. S. Lee, X. Pang, S. Hoffmann, H. Goudey, and A. Thanachareonkit, “An empirical study of a full-scale polymer thermochromic window and its implications on material science development objectives,” Sol. Energy Mater. Sol. Cells, vol. 116, pp. 14–26, Sep. 2013.spa
dc.relation.references[85] M. M. Seyfouri and R. Binions, “Sol-gel approaches to thermochromic vanadium dioxide coating for smart glazing application,” Sol. Energy Mater. Sol. Cells, vol. 159, pp. 52–65, Jan. 2017.spa
dc.relation.references[86] H. Yang et al., “Composite phase change materials with good reversible thermochromic ability in delignified wood substrate for thermal energy storage,” Appl. Energy, vol. 212, pp. 455–464, Feb. 2018.spa
dc.relation.references[87] Z. Liang et al., “Tungsten-doped vanadium dioxide thin films as smart windows with self-cleaning and energy-saving functions,” J. Alloys Compd., vol. 694, pp. 124–131, Feb. 2017.spa
dc.relation.references[88] W. Lu, G. Zhao, B. Song, J. Li, X. Zhang, and G. Han, “Preparation and thermochromic properties of sol-gel-derived Zr-doped VO 2 films,” Surf. Coat. Technol., vol. 320, pp. 311–314, Jun. 2017.spa
dc.relation.references[89] N. Wang, Q. S. Goh, P. L. Lee, S. Magdassi, and Y. Long, “One-step hydrothermal synthesis of rare earth/W-codoped VO 2 nanoparticles: Reduced phase transition temperature and improved thermochromic properties,” J. Alloys Compd., vol. 711, pp. 222–228, Jul. 2017.spa
dc.relation.references[90] K. Allen, K. Connelly, P. Rutherford, and Y. Wu, “Smart windows—Dynamic control of building energy performance,” Energy Build., vol. 139, pp. 535–546, Mar. 2017.spa
dc.relation.references[91] W. Feng, L. Zou, G. Gao, G. Wu, J. Shen, and W. Li, “Gasochromic smart window: optical and thermal properties, energy simulation and feasibility analysis,” Sol. Energy Mater. Sol. Cells, vol. 144, pp. 316–323, Jan. 2016.spa
dc.relation.references[92] N. Bhaktavatsala, “Colourmorph,” Master Thesis, Institute for advanced architecture of Catalonia, Barcelona, 2015.spa
dc.relation.references[93] K. S. Pascha, “The use of Phase-Change-Material as cooling-strategy for buildings in the Chilean climate,” Int. J. Low-Carbon Technol., vol. 3, no. 2, pp. 101–109, Apr. 2008.spa
dc.relation.references[94] L. Bianco et al., “Thermal and optical characterisation of dynamic shading systems with PCMs through laboratory experimental measurements,” Energy Build., vol. 163, pp. 92–110, Mar. 2018.spa
dc.relation.references[95] L. Li, H. Yu, X. Wang, and S. Zheng, “Thermal analysis of melting and freezing processes of phase change materials (PCMs) based on dynamic DSC test,” Energy Build., vol. 130, pp. 388–396, Oct. 2016.spa
dc.relation.references[96] F. Liu, J. Zhu, J. Liu, B. Ma, W. Zhou, and R. Li, “Preparation and properties of capric-stearic acid/White Carbon Black composite for thermal storage in building envelope,” Energy Build., vol. 158, pp. 1781–1789, Jan. 2018.spa
dc.relation.references[97] A. Fateh, D. Borelli, F. Devia, and H. Weinläder, “Summer thermal performances of PCM-integrated insulation layers for light-weight building walls: effect of orientation and melting point temperature,” Therm. Sci. Eng. Prog., Jan. 2018.spa
dc.relation.references[98] K. O. Lee, M. A. Medina, X. Sun, and X. Jin, “Thermal performance of phase change materials (PCM)-enhanced cellulose insulation in passive solar residential building walls,” Sol. Energy, vol. 163, pp. 113–121, Mar. 2018.spa
dc.relation.references[99] L. Royon, L. Karim, and A. Bontemps, “Optimization of PCM embedded in a floor panel developed for thermal management of the lightweight envelope of buildings,” Energy Build., vol. 82, pp. 385–390, Oct. 2014.spa
dc.relation.references[100] L. Erlbeck et al., “Adjustment of thermal behavior by changing the shape of PCM inclusions in concrete blocks,” Energy Convers. Manag., vol. 158, pp. 256–265, Feb. 2018.spa
dc.relation.references[101] A. D’Alessandro, A. L. Pisello, C. Fabiani, F. Ubertini, L. F. Cabeza, and F. Cotana, “Multifunctional smart concretes with novel phase change materials: Mechanical and thermo-energy investigation,” Appl. Energy, vol. 212, pp. 1448–1461, Feb. 2018.spa
dc.relation.references[102] A. Laura Pisello, C. Fabiani, and F. Cotana, “New experimental technique to investigate the thermal behavior of PCM/doped concrete for enhancing thermal/energy storage capability of building envelope,” Energy Procedia, vol. 126, pp. 139–146, Sep. 2017.spa
dc.relation.references[103] E. Leang, P. Tittelein, L. Zalewski, and S. Lassue, “Numerical study of a composite Trombe solar wall integrating microencapsulated PCM,” Energy Procedia, vol. 122, pp. 1009–1014, Sep. 2017.spa
dc.relation.references[104] V. V. Rao, R. Parameshwaran, and V. V. Ram, “PCM-mortar based construction materials for energy efficient buildings: A review on research trends,” Energy Build., vol. 158, pp. 95–122, Jan. 2018.spa
dc.relation.references[105] S. Li, G. Sun, K. Zou, and X. Zhang, “Experimental research on the dynamic thermal performance of a novel triple-pane building window filled with PCM,” Sustain. Cities Soc., vol. 27, pp. 15–22, Nov. 2016.spa
dc.relation.references[106] G. G. D. Han, H. Li, and J. C. Grossman, “Optically-controlled long-term storage and release of thermal energy in phase-change materials,” Nat. Commun., vol. 8, no. 1, Dec. 2017.spa
dc.relation.references[107] M. Decker, “Nanotechology and Emergent Materials in Architecture,” presented at the Tectonics of Teaching, Tectonics of Teaching, 2013, vol. 2013, pp. 1–7.spa
dc.relation.references[108] H. Joucka, “Sound to Polymer 1.0,” Master Thesis, Institute for advanced architecture of Catalonia, Barcelona, 2016.spa
dc.relation.references[109] L. Franzke, D. Rossi, and K. Franinovic, “Fluid Morphologies: Hydroactive Polymers for Responsive Architecture,” in POSTHUMAN FRONTIERS: Data, Designers, and Cognitive Machines, Ann Arbor, Michigan, 2016, pp. 478–487.spa
dc.relation.references[110] M. Decker, “Soft Human Computer Interfaces - Towards Soft Robotics in Architecture,” presented at the 35th eCAADe Conference, Rome, Italy, 2017, vol. 02, pp. 739–744.spa
dc.relation.references[111] M. Kretzer, “towards a new softness The aesthetics of soft dielectric electroactive polymers and their application in an architectural context.” Morgan Ip, Dino Rossi Chair for Computer Aided Architectural Design, 2010.spa
dc.relation.references[112] M. Kretzer and D. Rossi, “ShapeShift,” Leonardo, vol. 45, no. 5, pp. 480–481, Oct. 2012.spa
dc.relation.references[113] N. Biloria and V. Sumini, “Performative Building Skin Systems: A Morphogenomic Approach towards Developing Real-Time Adaptive Building Skin Systems,” Int. J. Archit. Comput., vol. 7, no. 4, pp. 643–675, Dec. 2009.spa
dc.relation.references[114] A. Azens and C. Granqvist, “Electrochromic smart windows: energy efficiency and device aspects,” J. Solid State Electrochem., vol. 7, no. 2, pp. 64–68, Feb. 2003.spa
dc.relation.references[115] N. L. Sbar, L. Podbelski, H. M. Yang, and B. Pease, “Electrochromic dynamic windows for office buildings,” Int. J. Sustain. Built Environ., vol. 1, no. 1, pp. 125–139, Jun. 2012.spa
dc.relation.references[116] E. S. Lee and A. Tavil, “Energy and visual comfort performance of electrochromic windows with overhangs,” Build. Environ., vol. 42, no. 6, pp. 2439–2449, Jun. 2007.spa
dc.relation.references[117] S. Beites, “Morphological Behavior of Shape Memory Polymers Toward a Deployable, Adaptive Architecture,” in Adaptive Architecture, Cambridge, Ontario, 2013, pp. 121–128.spa
dc.relation.references[118] Z. D. Arnellou, E. A. Papakonstantinou, and P. Sarantinoudi, “Fabricflation. Structuring textile techniques,” Master Thesis, Institute for advanced architecture of Catalonia, Barcelona, 2015.spa
dc.relation.references[119] R. shambayati, ece Tankal, and B. Efilena, “Translated Geometries,” Master Thesis, Institute for advanced architecture of Catalonia, Barcelona, 2014.spa
dc.relation.references[120] Y. Tang, G. Lin, S. Yang, Y. K. Yi, R. D. Kamien, and J. Yin, “Programmable Kiri-Kirigami Metamaterials,” Adv. Mater., p. 1604262, Dec. 2016.spa
dc.relation.references[121] C. Skaar, Wood-water relations. Place of publication not identified: Springer, 2012.spa
dc.relation.references[122] Samuel V. Glass and Samuel L. Zelinka, “Moisture Relations and Physical Properties of Wood,” in Wood handbook : wood as an engineering material, FPL-GTR-190., Madison, WI: U.S. Department of Agriculture, Forest Service, Forest Products Laboratory, 2010.spa
dc.relation.references[123] V. Kamperidou, I. Barboutis, and V. Vasileiou, “Response of colour and hygroscopic properties of Scots pine wood to thermal treatment,” J. For. Res., vol. 24, no. 3, pp. 571–575, Sep. 2013.spa
dc.relation.references[124] J. M. Dinwoodie, Timber, its nature and behaviour, 2nd ed. London ; New York : [England]: E & FN Spon ; BRE, with the support of the Centre for Timber Technology and Construction at BRE, 2000.spa
dc.relation.references[125] I. Burgert and P. Fratzl, “Actuation systems in plants as prototypes for bioinspired devices,” Philos. Trans. R. Soc. Math. Phys. Eng. Sci., vol. 367, no. 1893, pp. 1541–1557, Apr. 2009.spa
dc.relation.references[126] A. Le Duigou and M. Castro, “Evaluation of force generation mechanisms in natural, passive hydraulic actuators,” Sci. Rep., vol. 6, no. 1, May 2016.spa
dc.relation.references[127] M. T. Marshall, “HYGROSCOPIC CLIMATIC MODULATED BOUNDARIES: A Strategy for Differentiated Performance Using a Natural Circulative and Energy Captive Building Envelope in Hot and Moisture Rich Laden Air Environments.,” Perkins & Will research journal, vol. 02.01, no. 03, pp. 41–54, 2010.spa
dc.relation.references[128] M. T. Marshall, “Bi-directional thermo-hygroscopic facades: Feasibility for liquid desiccant thermal walls to provide cooling in a small-office building,” presented at the Architectural Research Centers Consortium FUTURE of Architectural Research, Illinois, Chicago, 2015, pp. 45–56.spa
dc.relation.references[129] B. Ogwezi, G. Jeronimidis, G. Cook, J. Sakula, and A. Kilaire, “Development of a passive and adaptable façade element for humidity control.” Technologies for a Sustainable Built Environment (T SBE) Centre, University of Reading, 2013.spa
dc.relation.references[130] T. L. Staples and P. K. Chatterjee, “Synthetic Superabsorbents,” in Textile Science and Technology, vol. 13, Elsevier, 2002, pp. 283–322.spa
dc.relation.references[131] E. M. Ahmed, “Hydrogel: Preparation, characterization, and applications: A review,” J. Adv. Res., vol. 6, no. 2, pp. 105–121, Mar. 2015.spa
dc.relation.references[132] Y. Qiu and K. Park, “Environment-sensitive hydrogels for drug delivery,” Adv. Drug Deliv. Rev., vol. 53, no. 3, pp. 321–339, Dec. 2001.spa
dc.relation.references[133] S. D. Kim, Bloom. Materials & Applications Gallery. 2012.spa
dc.relation.references[134] Y. Liu, Y. Li, K. . Ramesh, and J. Van Humbeeck, “High strain rate deformation of martensitic NiTi shape memory alloy,” Scr. Mater., vol. 41, no. 1, pp. 89–95, Jun. 1999.spa
dc.relation.references[135] C. Cismaşiu and F. P. Amarante dos Santos, “Numerical simulation of superelastic shape memory alloys subjected to dynamic loads,” Smart Mater. Struct., vol. 17, no. 2, p. 025036, Apr. 2008.spa
dc.relation.references[136] T. Waitz, V. Kazykhanov, and H. P. Karnthaler, “Martensitic phase transformations in nanocrystalline NiTi studied by TEM,” Acta Mater., vol. 52, no. 1, pp. 137–147, Jan. 2004.spa
dc.relation.references[137] M. Decker and Z. Andrzej, “Designing Resilient Buildings with Emergent Materials,” presented at the 32nd eCAADe Conference, England, The U.K., 2014, vol. 2, pp. 179–184.spa
dc.relation.references[138] M. Kamalisarvestani, R. Saidur, S. Mekhilef, and F. S. Javadi, “Performance, materials and coating technologies of thermochromic thin films on smart windows,” Renew. Sustain. Energy Rev., vol. 26, pp. 353–364, Oct. 2013.spa
dc.relation.references[139] I. P. Parkin and T. D. Manning, “Intelligent Thermochromic Windows,” J. Chem. Educ., vol. 83, no. 3, p. 393, Mar. 2006.spa
dc.relation.references[140] S. Wang, M. Liu, L. Kong, Y. Long, X. Jiang, and A. Yu, “Recent progress in VO2 smart coatings: Strategies to improve the thermochromic properties,” Prog. Mater. Sci., vol. 81, pp. 1–54, Aug. 2016.spa
dc.relation.references[141] R. Zhang et al., “Metal-to-insulator transition and its effective manipulation studied from investigations in V 1-x Nb x O 2 bulks,” Ceram. Int., vol. 44, no. 3, pp. 2809–2813, Feb. 2018.spa
dc.relation.references[142] M. Casini, “Active dynamic windows for buildings: A review,” Renew. Energy, vol. 119, pp. 923–934, Apr. 2018.spa
dc.relation.references[143] M. Kuta and T. M. Wójcik, “Phase change materials in energy sector - applications and material requirements,” EPJ Web Conf., vol. 92, p. 02043, 2015.spa
dc.relation.references[144] M. Iten, S. Liu, and A. Shukla, “A review on the air-PCM-TES application for free cooling and heating in the buildings,” Renew. Sustain. Energy Rev., vol. 61, pp. 175–186, Aug. 2016.spa
dc.relation.references[145] A. Kasaeian, L. bahrami, F. Pourfayaz, E. Khodabandeh, and W.-M. Yan, “Experimental studies on the applications of PCMs and nano-PCMs in buildings: A critical review,” Energy Build., vol. 154, pp. 96–112, Nov. 2017.spa
dc.relation.references[146] H. Akeiber et al., “A review on phase change material (PCM) for sustainable passive cooling in building envelopes,” Renew. Sustain. Energy Rev., vol. 60, pp. 1470–1497, Jul. 2016.spa
dc.relation.references[147] Y. Cascone, A. Capozzoli, and M. Perino, “Optimisation analysis of PCM-enhanced opaque building envelope components for the energy retrofitting of office buildings in Mediterranean climates,” Appl. Energy, vol. 211, pp. 929–953, Feb. 2018.spa
dc.relation.references[148] A. Castell and M. M. Farid, “Experimental validation of a methodology to assess PCM effectiveness in cooling building envelopes passively,” Energy Build., vol. 81, pp. 59–71, Oct. 2014.spa
dc.relation.references[149] B. A. Young, G. Falzone, Z. Wei, G. Sant, and L. Pilon, “Reduced-scale experiments to evaluate performance of composite building envelopes containing phase change materials,” Constr. Build. Mater., vol. 162, pp. 584–595, Feb. 2018.spa
dc.relation.references[150] M. Saffari, A. de Gracia, C. Fernández, and L. F. Cabeza, “Simulation-based optimization of PCM melting temperature to improve the energy performance in buildings,” Appl. Energy, vol. 202, pp. 420–434, Sep. 2017.spa
dc.relation.references[151] A. Pasupathy, R. Velraj, and R. V. Seeniraj, “Phase change material-based building architecture for thermal management in residential and commercial establishments,” Renew. Sustain. Energy Rev., vol. 12, no. 1, pp. 39–64, Jan. 2008.spa
dc.relation.references[152] A. Kylili and P. A. Fokaides, “Life Cycle Assessment (LCA) of Phase Change Materials (PCMs) for building applications: A review,” J. Build. Eng., vol. 6, pp. 133–143, Jun. 2016.spa
dc.relation.references[153] V. Bobnar, A. Levstik, C. Huang, and Q. M. Zhang, “Enhanced dielectric response in all-organic polyaniline–poly(vinylidene fluoride-trifluoroethylene-chlorotrifluoroethylene) composite,” J. Non-Cryst. Solids, vol. 353, no. 2, pp. 205–209, Feb. 2007.spa
dc.relation.references[154] H. Meng and G. Li, “Reversible switching transitions of stimuli-responsive shape changing polymers,” J. Mater. Chem. A, vol. 1, no. 27, p. 7838, 2013.spa
dc.relation.references[155] P. Kolodziej and R. Josef, “Responsive Building Envelope as a Material System of Autonomous Agents,” presented at the 19th Conference on Computer-Aided Architectural Design Research in Asia, Singapore, 2013, pp. 945–954.spa
dc.relation.references[156] B. Krietemeyer, “An Interactive Simulation Environment for Adaptive Architectural Systems,” in Architecture and Interaction, N. S. Dalton, H. Schnädelbach, M. Wiberg, and T. Varoudis, Eds. Cham: Springer International Publishing, 2016, pp. 231–252.spa
dc.relation.references[157] E. A. Krietemeyer and D. Anna H., “Electropolymeric Technology for Dynamic Building Envelopes,” presented at the Parametricism (SPC) ACADIA Regional 2011 Conferenc, Lincoln, Nebraska, 2011, pp. 75–83.spa
dc.relation.references[158] J. S. E. M. Svensson and C. G. Granqvist, “Electrochromic coatings for ‘smart windows,’” Sol. Energy Mater., vol. 12, no. 6, pp. 391–402, Dec. 1985.spa
dc.relation.references[159] A. Azens et al., “Flexible foils with electrochromic coatings: science, technology and applications,” Mater. Sci. Eng. B, vol. 119, no. 3, pp. 214–223, Jun. 2005.spa
dc.relation.references[160] S. K. Deb, “Optical and photoelectric properties and colour centres in thin films of tungsten oxide,” Philos. Mag., vol. 27, no. 4, pp. 801–822, Apr. 1973.spa
dc.relation.references[161] C. G. Granqvist, Handbook of inorganic electrochromic materials. Amsterdam; New York: Elsevier, 1995.spa
dc.relation.references[162] M. Pittaluga, “Electrochromic glazing and walls for reducing building cooling needs,” in Eco-Efficient Materials for Mitigating Building Cooling Needs, Elsevier, 2015, pp. 473–497.spa
dc.relation.references[163] A. Malekafzali Ardakan, E. Sok, and J. Niemasz, “Electrochromic glass vs. fritted glass: an analysis of glare control performance,” Energy Procedia, vol. 122, pp. 343–348, Sep. 2017.spa
dc.relation.references[164] E. S. Lee, D. L. DiBartolomeo, J. Klems, M. Yazdanian, and S. E. Selkowitz, “Monitored Energy Performance of Electrochromic Windows Controlled for Daylight and Visual Comfort,” presented at the ASHRAE 2006 Summer Meeting, Quebec, Canada, 2006.spa
dc.relation.references[165] T. Aslihan and S. L. Eleanor, “The impact of overhang design on the performance of the electrochromic windows,” presented at the International Solar Energy Society (ISES) Solar World Congress, Orlando, Florida, 2018, pp. 199–206.spa
dc.relation.references[166] N. DeForest, A. Shehabi, S. Selkowitz, and D. J. Milliron, “A comparative energy analysis of three electrochromic glazing technologies in commercial and residential buildings,” Appl. Energy, vol. 192, pp. 95–109, Apr. 2017.spa
dc.relation.references[167] J. Leng and S. Du, Eds., Shape-memory polymers and multifunctional composites. Boca Raton: CRC Press/Taylor & Francis, 2010.spa
dc.relation.references[168] L. Sun et al., “Stimulus-responsive shape memory materials: A review,” Mater. Des., vol. 33, pp. 577–640, Jan. 2012.spa
dc.relation.references[169] J. Hu, Y. Zhu, H. Huang, and J. Lu, “Recent advances in shape–memory polymers: Structure, mechanism, functionality, modeling and applications,” Prog. Polym. Sci., vol. 37, no. 12, pp. 1720–1763, Dec. 2012.spa
dc.relation.references[170] Q. Meng and J. Hu, “A review of shape memory polymer composites and blends,” Compos. Part Appl. Sci. Manuf., vol. 40, no. 11, pp. 1661–1672, Nov. 2009.spa
dc.relation.references[171] F. Zhang, L. Liu, X. Lv, Y. Liu, and J. Leng, “Properties of smart adaptive composite materials,” in Smart Composite Coatings and Membranes, Elsevier, 2016, pp. 3–31.spa
dc.relation.references[172] T. Mu, L. Liu, X. Lan, Y. Liu, and J. Leng, “Shape memory polymers for composites,” Compos. Sci. Technol., Mar. 2018.spa
dc.relation.references[173] X. Wang et al., “Improved Self-Healing of Polyethylene/Carbon Black Nanocomposites by Their Shape Memory Effect,” J. Phys. Chem. B, vol. 117, no. 5, pp. 1467–1474, Feb. 2013.spa
dc.relation.references[174] A. Lendlein, Ed., Shape-Memory Polymers, vol. 226. Berlin, Heidelberg: Springer Berlin Heidelberg, 2010.spa
dc.relation.references[175] Y. Zhou and W. M. Huang, “Shape Memory Effect in Polymeric Materials: Mechanisms and Optimization,” Procedia IUTAM, vol. 12, pp. 83–92, 2015.spa
dc.relation.references[176] Q. Zhao, H. J. Qi, and T. Xie, “Recent progress in shape memory polymer: New behavior, enabling materials, and mechanistic understanding,” Prog. Polym. Sci., vol. 49–50, pp. 79–120, Oct. 2015.spa
dc.relation.references[177] T. Chung, A. Romo-Uribe, and P. T. Mather, “Two-Way Reversible Shape Memory in a Semicrystalline Network,” Macromolecules, vol. 41, no. 1, pp. 184–192, Jan. 2008.spa
dc.relation.references[178] Y. Bai, X. Zhang, Q. Wang, and T. Wang, “A tough shape memory polymer with triple-shape memory and two-way shape memory properties,” J. Mater. Chem. A, vol. 2, no. 13, p. 4771, 2014.spa
dc.relation.references[179] J. Hu et al., “Epoxy shape memory polymer (SMP): Material preparation, uniaxial tensile tests and dynamic mechanical analysis,” Polym. Test., vol. 62, pp. 335–341, Sep. 2017.spa
dc.relation.references[180] M. Balk, M. Behl, C. Wischke, J. Zotzmann, and A. Lendlein, “Recent advances in degradable lactide-based shape-memory polymers,” Adv. Drug Deliv. Rev., vol. 107, pp. 136–152, Dec. 2016.spa
dc.relation.references[181] M. Farhan, S. R. Chaganti, U. Nöchel, K. Kratz, and A. Lendlein, “Reversible shape-memory properties of surface functionalizable, crystallizable crosslinked terpolymers: Reversible Actuation of Surface Modified Crosslinked Terpolymers,” Polym. Adv. Technol., vol. 26, no. 12, pp. 1421–1427, Dec. 2015.spa
dc.relation.references[182] B. Yang, W. M. Huang, C. Li, and L. Li, “Effects of moisture on the thermomechanical properties of a polyurethane shape memory polymer,” Polymer, vol. 47, no. 4, pp. 1348–1356, Feb. 2006.spa
dc.relation.references[183] E. Hornbogen, “Comparison of Shape Memory Metals and Polymers,” Adv. Eng. Mater., vol. 8, no. 1–2, pp. 101–106, Feb. 2006.spa
dc.relation.references[184] W. Wang, Y. Liu, and J. Leng, “Recent developments in shape memory polymer nanocomposites: Actuation methods and mechanisms,” Coord. Chem. Rev., vol. 320–321, pp. 38–52, Aug. 2016.spa
dc.relation.references[185] M. Behl and A. Lendlein, “Actively moving polymers,” Soft Matter, vol. 3, no. 1, pp. 58–67, 2007.spa
dc.relation.references[186] T. Xie, “Recent advances in polymer shape memory,” Polymer, vol. 52, no. 22, pp. 4985–5000, Oct. 2011.spa
dc.relation.references[187] M. Behl, K. Kratz, J. Zotzmann, U. Nöchel, and A. Lendlein, “Reversible Bidirectional Shape-Memory Polymers,” Adv. Mater., vol. 25, no. 32, pp. 4466–4469, Aug. 2013.spa
dc.relation.references[188] I. Kolesov, O. Dolynchuk, D. Jehnichen, U. Reuter, M. Stamm, and H.-J. Radusch, “Changes of Crystal Structure and Morphology during Two-Way Shape-Memory Cycles in Cross-Linked Linear and Short-Chain Branched Polyethylenes,” Macromolecules, vol. 48, no. 13, pp. 4438–4450, Jul. 2015.spa
dc.relation.references[189] S. Pandini, D. Dioni, K. Paderni, M. Messori, M. Toselli, and T. Riccò, “The network density as tailoring parameter for the two-way shape memory response of crosslinked poly(ε-caprolactone),” 2014, pp. 270–273.spa
dc.relation.references[190] G. Lugito, E. Woo, and W.-T. Chuang, “Interior Lamellar Assembly and Optical Birefringence in Poly(trimethylene terephthalate) Spherulites: Mechanisms from Past to Present,” Crystals, vol. 7, no. 2, p. 56, Feb. 2017.spa
dc.relation.references[191] T. Chung, A. Romo-Uribe, and P. T. Mather, “Two-Way Reversible Shape Memory in a Semicrystalline Network,” Macromolecules, vol. 41, no. 1, pp. 184–192, Jan. 2008.spa
dc.relation.references[192] K. K. Westbrook et al., “Constitutive Modeling of Shape Memory Effects in Semicrystalline Polymers With Stretch Induced Crystallization,” J. Eng. Mater. Technol., vol. 132, no. 4, p. 041010, 2010.spa
dc.relation.references[193] J. Kunzelman, T. Chung, P. T. Mather, and C. Weder, “Shape memory polymers with built-in threshold temperature sensors,” J. Mater. Chem., vol. 18, no. 10, p. 1082, 2008.spa
dc.relation.references[194] J. Li, W. R. Rodgers, and T. Xie, “Semi-crystalline two-way shape memory elastomer,” Polymer, vol. 52, no. 23, pp. 5320–5325, Oct. 2011.spa
dc.relation.references[195] C. Qian, Y. Dong, Y. Zhu, and Y. Fu, “Two-way shape memory behavior of semi-crystalline elastomer under stress-free condition,” Smart Mater. Struct., vol. 25, no. 8, p. 085023, Aug. 2016.spa
dc.relation.references[196] J. Fan and G. Li, “High performance and tunable artificial muscle based on two-way shape memory polymer,” RSC Adv, vol. 7, no. 2, pp. 1127–1136, 2017.spa
dc.relation.references[197] I. Kolesov, O. Dolynchuk, and H.-J. Radusch, “Shape-memory behavior of cross-linked semi-crystalline polymers and their blends,” Express Polym. Lett., vol. 9, no. 3, pp. 255–276, 2015.spa
dc.relation.references[198] O. Dolynchuk, I. Kolesov, R. Androsch, and H.-J. Radusch, “Kinetics and dynamics of two-way shape-memory behavior of crosslinked linear high-density and short-chain branched polyethylenes with regard to crystal orientation,” Polymer, vol. 79, pp. 146–158, Nov. 2015.spa
dc.relation.references[199] L. Ma et al., “Effects of carbon black nanoparticles on two-way reversible shape memory in crosslinked polyethylene,” Polymer, vol. 56, pp. 490–497, Jan. 2015.spa
dc.relation.references[200] A. Biswas, V. K. Aswal, P. U. Sastry, D. Rana, and P. Maiti, “Reversible Bidirectional Shape Memory Effect in Polyurethanes through Molecular Flipping,” Macromolecules, vol. 49, no. 13, pp. 4889–4897, Jul. 2016.spa
dc.relation.references[201] Q. Li, J. Zhou, M. Vatankhah-Varnoosfaderani, D. Nykypanchuk, O. Gang, and S. S. Sheiko, “Advancing Reversible Shape Memory by Tuning the Polymer Network Architecture,” Macromolecules, vol. 49, no. 4, pp. 1383–1391, Feb. 2016.spa
dc.relation.references[202] J. Zhou et al., “Shapeshifting: Reversible Shape Memory in Semicrystalline Elastomers,” Macromolecules, vol. 47, no. 5, pp. 1768–1776, Mar. 2014.spa
dc.relation.references[203] S. Pandini et al., “Two-way reversible shape memory behaviour of crosslinked poly(ε-caprolactone),” Polymer, vol. 53, no. 9, pp. 1915–1924, Apr. 2012.spa
dc.relation.references[204] S. Pandini et al., “One-way and two-way shape memory behaviour of semi-crystalline networks based on sol–gel cross-linked poly(ε-caprolactone),” Polymer, vol. 54, no. 16, pp. 4253–4265, Jul. 2013.spa
dc.relation.references[205] L. Lu and G. Li, “One-Way Multishape-Memory Effect and Tunable Two-Way Shape Memory Effect of Ionomer Poly(ethylene- co -methacrylic acid),” ACS Appl. Mater. Interfaces, vol. 8, no. 23, pp. 14812–14823, Jun. 2016.spa
dc.relation.references[206] M. Bothe and T. Pretsch, “Bidirectional actuation of a thermoplastic polyurethane elastomer,” J. Mater. Chem. A, vol. 1, no. 46, p. 14491, 2013.spa
dc.relation.references[207] H. Xie et al., “Creating Poly(tetramethylene oxide) Glycol-Based Networks with Tunable Two-Way Shape Memory Effects via Temperature-Switched Netpoints,” Macromolecules, vol. 50, no. 13, pp. 5155–5164, Jul. 2017.spa
dc.relation.references[208] B. Q. Y. Chan, S. J. W. Heng, S. S. Liow, K. Zhang, and X. J. Loh, “Dual-responsive hybrid thermoplastic shape memory polyurethane,” Mater. Chem. Front., vol. 1, no. 4, pp. 767–779, 2017.spa
dc.relation.references[209] M. Y. Razzaq, M. Behl, U. Nöchel, and A. Lendlein, “Magnetically controlled shape-memory effects of hybrid nanocomposites from oligo( ω -pentadecalactone) and covalently integrated magnetite nanoparticles,” Polymer, vol. 55, no. 23, pp. 5953–5960, Nov. 2014.spa
dc.relation.references[210] S. Pandini et al., “The two-way shape memory behaviour of crosslinked poly(ε-caprolactone) systems with largely varied network density,” J. Intell. Mater. Syst. Struct., vol. 27, no. 10, pp. 1388–1403, Jun. 2016.spa
dc.relation.references[211] U. Nöchel, K. Kratz, M. Behl, and A. Lendlein, “Relation -between Nanostructural Changes and Macroscopic Effects during Reversible Temperature-Memory Effect under Stress-Free Conditions in Semicrystalline Polymer Networks,” MRS Proc., vol. 1718, 2015.spa
dc.relation.references[212] O. Dolynchuk, I. Kolesov, and H.-J. Radusch, “Theoretical Description of an Anomalous Elongation During Two-Way Shape-Memory Effect in Crosslinked Semicrystalline Polymers,” Macromol. Symp., vol. 346, no. 1, pp. 48–58, Dec. 2014.spa
dc.relation.references[213] M. Huang, X. Dong, L. Wang, J. Zhao, G. Liu, and D. Wang, “Two-way shape memory property and its structural origin of cross-linked poly(ε-caprolactone),” RSC Adv, vol. 4, no. 98, pp. 55483–55494, Oct. 2014.spa
dc.relation.references[214] S. Pandini, D. Dioni, K. Paderni, M. Messori, M. Toselli, and T. Riccò, “The network density as tailoring parameter for the two-way shape memory response of crosslinked poly(ε-caprolactone),” 2014, pp. 270–273.spa
dc.relation.references[215] D. L. Safranski and K. Gall, “Effect of chemical structure and crosslinking density on the thermo-mechanical properties and toughness of (meth)acrylate shape memory polymer networks,” Polymer, vol. 49, no. 20, pp. 4446–4455, Sep. 2008.spa
dc.relation.references[216] M. Bothe and T. Pretsch, “Two-Way Shape Changes of a Shape-Memory Poly(ester urethane),” Macromol. Chem. Phys., vol. 213, no. 22, pp. 2378–2385, Nov. 2012.spa
dc.relation.references[217] A. L. Sisson, D. Ekinci, and A. Lendlein, “The contemporary role of ε-caprolactone chemistry to create advanced polymer architectures,” Polymer, vol. 54, no. 17, pp. 4333–4350, Aug. 2013.spa
dc.relation.references[218] M. Behl, J. Zotzmann, and A. Lendlein, “One-Way and Reversible Dual-Shape Effect of Polymer Networks Based on Polypentadecalactone Segments,” Int. J. Artif. Organs, vol. 34, no. 2, pp. 231–237, Feb. 2011.spa
dc.relation.references[219] I. Bellin, S. Kelch, R. Langer, and A. Lendlein, “Polymeric triple-shape materials,” Proc. Natl. Acad. Sci., vol. 103, no. 48, pp. 18043–18047, Nov. 2006.spa
dc.relation.references[220] I. Kolesov, O. Dolynchuk, S. Borreck, and H.-J. Radusch, “Morphology-controlled multiple one- and two-way shape-memory behavior of cross-linked polyethylene/poly(ε-caprolactone) blends: SHAPE-MEMORY BEHAVIOR OF POLYETHYLENE/POLY(ε-CAPROLACTONE) BLENDS,” Polym. Adv. Technol., vol. 25, no. 11, pp. 1315–1322, Nov. 2014.spa
dc.relation.references[221] K. Y. Mya, H. B. Gose, T. Pretsch, M. Bothe, and C. He, “Star-shaped POSS-polycaprolactone polyurethanes and their shape memory performance,” J. Mater. Chem., vol. 21, no. 13, p. 4827, 2011.spa
dc.relation.references[222] G. Rabani, H. Luftmann, and A. Kraft, “Synthesis and characterization of two shape-memory polymers containing short aramid hard segments and poly(ε-caprolactone) soft segments,” Polymer, vol. 47, no. 12, pp. 4251–4260, May 2006.spa
dc.relation.references[223] J. Zhao et al., “Triple Shape Memory Effects of Cross-Linked Polyethylene/Polypropylene Blends with Cocontinuous Architecture,” ACS Appl. Mater. Interfaces, vol. 5, no. 12, pp. 5550–5556, Jun. 2013.spa
dc.relation.references[224] J. Zotzmann, M. Behl, Y. Feng, and A. Lendlein, “Copolymer Networks Based on Poly(ω-pentadecalactone) and Poly(ϵ-caprolactone)Segments as a Versatile Triple-Shape Polymer System,” Adv. Funct. Mater., vol. 20, no. 20, pp. 3583–3594, Oct. 2010.spa
dc.relation.references[225] J. Zotzmann, M. Behl, D. Hofmann, and A. Lendlein, “Reversible Triple-Shape Effect of Polymer Networks Containing Polypentadecalactone- and Poly(ε-caprolactone)-Segments,” Adv. Mater., vol. 22, no. 31, pp. 3424–3429, Apr. 2010.spa
dc.relation.references[226] Y. Meng, J. Jiang, and M. Anthamatten, “Shape Actuation via Internal Stress-Induced Crystallization of Dual-Cure Networks,” ACS Macro Lett., vol. 4, no. 1, pp. 115–118, Jan. 2015.spa
dc.relation.references[227] M. Y. Razzaq, M. Behl, and A. Lendlein, “Thermally Controlled Shape-Memory Investigations of Nanocomposites Based on Oligo(ω-pentadecalactone) and Magnetic Nanoparticles Acting as Crosslinks,” MRS Proc., vol. 1718, 2015.spa
dc.relation.references[228] W. Li, Y. Liu, and J. Leng, “Shape memory polymer nanocomposite with multi-stimuli response and two-way reversible shape memory behavior,” RSC Adv, vol. 4, no. 106, pp. 61847–61854, Nov. 2014.spa
dc.relation.references[229] A. H. Torbati, H. B. Nejad, M. Ponce, J. P. Sutton, and P. T. Mather, “Properties of triple shape memory composites prepared via polymerization-induced phase separation,” Soft Matter, vol. 10, no. 17, pp. 3112–3121, 2014.spa
dc.relation.references[230] X. Li, Y. Wang, R. Wu, Y. Pan, Z. Zheng, and X. Ding, “Slide-ring shape memory polymers with movable cross-links,” React. Funct. Polym., vol. 119, pp. 26–36, Oct. 2017.spa
dc.relation.references[231] Y. M. Chen, P. Lin, Y. He, J. Q. He, J. Zhang, and X. L. Li, “Fast quantifying collision strength index of ethylene-vinyl acetate copolymer coverings on the fields based on near infrared hyperspectral imaging techniques,” Sci. Rep., vol. 6, no. 1, Aug. 2016.spa
dc.relation.references[232] Z. Zhang et al., “Tunable shape memory behaviors of poly(ethylene vinyl acetate) achieved by adding poly(L-lactide),” Smart Mater. Struct., vol. 24, no. 12, p. 125002, Dec. 2015.spa
dc.relation.references[233] H. Xie, L. Li, X.-Y. Deng, C.-Y. Cheng, K.-K. Yang, and Y.-Z. Wang, “Reinforcement of shape-memory poly(ethylene- co -vinyl acetate) by carbon fibre to access robust recovery capability under resistant condition,” Compos. Sci. Technol., vol. 157, pp. 202–208, Mar. 2018.spa
dc.relation.references[234] C. Qian, Y. Zhu, Y. Dong, and Y. Fu, “Vapor-grown carbon nanofiber/poly(ethylene-co-vinyl acetate) composites with electrical-active two-way shape memory behavior,” J. Intell. Mater. Syst. Struct., vol. 28, no. 19, pp. 2749–2756, Nov. 2017.spa
dc.relation.references[235] U. Nöchel, U. N. Kumar, K. Wang, K. Kratz, M. Behl, and A. Lendlein, “Triple-Shape Effect with Adjustable Switching Temperatures in Crosslinked Poly[ethylene- co -(vinyl acetate)],” Macromol. Chem. Phys., vol. 215, no. 24, pp. 2446–2456, Dec. 2014.spa
dc.relation.references[236] M. Behl, K. Kratz, U. Noechel, T. Sauter, and A. Lendlein, “Temperature-memory polymer actuators,” Proc. Natl. Acad. Sci., vol. 110, no. 31, pp. 12555–12559, Jul. 2013.spa
dc.relation.references[237] L. Ionov, “Polymeric Actuators,” Langmuir, vol. 31, no. 18, pp. 5015–5024, May 2015.spa
dc.relation.references[238] S. Iamsaard et al., “Conversion of light into macroscopic helical motion,” Nat. Chem., vol. 6, no. 3, pp. 229–235, Mar. 2014.spa
dc.relation.references[239] Q. Ge, C. K. Dunn, H. J. Qi, and M. L. Dunn, “Active origami by 4D printing,” Smart Mater. Struct., vol. 23, no. 9, p. 094007, Sep. 2014.spa
dc.relation.references[240] O. Dolynchuk, I. Kolesov, and H.-J. Radusch, “Shape-memory actuators on the basis of binary and ternary blends of polyethylenes,” 2015, p. 030002.spa
dc.relation.references[241] K. K. Westbrook et al., “Two-way reversible shape memory effects in a free-standing polymer composite,” Smart Mater. Struct., vol. 20, no. 6, p. 065010, Jun. 2011.spa
dc.relation.references[242] J. Brandrup, Polymer handbook. Norwich, NY: Knovel, 2005.spa
dc.relation.references[243] A. Lendlein and M. Behl, Eds., Shape-memory polymers. Heidelberg ; New York: Springer, 2010.spa
dc.relation.references[244] D. Hull and T. W. Clyne, An introduction to composite materials. Cambridge: Cambridge University Press, 2003.spa
dc.relation.references[245] E. N. Bolbasov et al., “Surface modification of poly(l-lactide) and polycaprolactone bioresorbable polymers using RF plasma discharge with sputter deposition of a hydroxyapatite target,” Mater. Lett., vol. 132, pp. 281–284, Oct. 2014.spa
dc.relation.references[246] L. S. Barbarash et al., “Surface modification of poly-ε-caprolactone electrospun fibrous scaffolds using plasma discharge with sputter deposition of a titanium target,” Mater. Lett., vol. 171, pp. 87–90, May 2016.spa
dc.relation.references[247] S. I. Tverdokhlebov et al., “Modification of polylactic acid surface using RF plasma discharge with sputter deposition of a hydroxyapatite target for increased biocompatibility,” Appl. Surf. Sci., vol. 329, pp. 32–39, Feb. 2015.spa
dc.relation.references[248] E. M. Liston, L. Martinu, and M. R. Wertheimer, “Plasma surface modification of polymers for improved adhesion: a critical review,” J. Adhes. Sci. Technol., vol. 7, no. 10, pp. 1091–1127, Jan. 1993.spa
dc.relation.references[249] S. Yoshida, K. Hagiwara, T. Hasebe, and A. Hotta, “Surface modification of polymers by plasma treatments for the enhancement of biocompatibility and controlled drug release,” Surf. Coat. Technol., vol. 233, pp. 99–107, Oct. 2013.spa
dc.relation.references[250] C. Cepedajimenez, “Surface modifications of EVA copolymers by using RF oxidizing and non-oxidizing plasmas,” Surf. Coat. Technol., vol. 174–175, pp. 94–99, Sep. 2003.spa
dc.relation.references[251] M. D. Landete-Ruiz and J. M. Martı́n-Martı́nez, “Surface modification of EVA copolymer by UV treatment,” Int. J. Adhes. Adhes., vol. 25, no. 2, pp. 139–145, Apr. 2005.spa
dc.relation.references[252] K. K. Chawla, Composite materials: science and engineering, 3rd ed. New York: Springer Science+Business Media, 2012.spa
dc.relation.references[253] S. Chen, J. Hu, and H. Zhuo, “Properties and mechanism of two-way shape memory polyurethane composites,” Compos. Sci. Technol., vol. 70, no. 10, pp. 1437–1443, Sep. 2010.spa
dc.relation.references[254] S. Chen, J. Hu, H. Zhuo, and Y. Zhu, “Two-way shape memory effect in polymer laminates,” Mater. Lett., vol. 62, no. 25, pp. 4088–4090, Sep. 2008.spa
dc.relation.references[255] H. Tamagawa, “Thermo-responsive two-way shape changeable polymeric laminate,” Mater. Lett., vol. 64, no. 6, pp. 749–751, Mar. 2010.spa
dc.relation.references[256] T.-H. Kang, J.-M. Lee, W.-R. Yu, J. H. Youk, and H. W. Ryu, “Two-way actuation behavior of shape memory polymer/elastomer core/shell composites,” Smart Mater. Struct., vol. 21, no. 3, p. 035028, Mar. 2012.spa
dc.relation.references[257] C. Hirschl et al., “In-line determination of the degree of crosslinking of ethylene vinyl acetate in PV modules by Raman spectroscopy,” Sol. Energy Mater. Sol. Cells, vol. 152, pp. 10–20, Aug. 2016.spa
dc.relation.references[258] X. Zhang, Q. Zhou, H. Liu, and H. Liu, “UV light induced plasticization and light activated shape memory of spiropyran doped ethylene-vinyl acetate copolymers,” Soft Matter, vol. 10, no. 21, p. 3748, 2014.spa
dc.relation.references[259] A. . Vaughan, Y. Zhao, L. . Barré, S. . Sutton, and S. . Swingler, “On additives, morphological evolution and dielectric breakdown in low density polyethylene,” Eur. Polym. J., vol. 39, no. 2, pp. 355–365, Feb. 2003.spa
dc.relation.references[260] C. Jiao, Z. Wang, X. Liang, and Y. Hu, “Non-isothermal crystallization kinetics of silane crosslinked polyethylene,” Polym. Test., vol. 24, no. 1, pp. 71–80, Feb. 2005.spa
dc.relation.references[261] Y.-I. Yoo, Y.-J. Kim, D.-K. Shin, and J.-J. Lee, “Development of martensite transformation kinetics of NiTi shape memory alloys under compression,” Int. J. Solids Struct., vol. 64–65, pp. 51–61, Jul. 2015.spa
dc.relation.references[262] P. S. Lobo, J. Almeida, and L. Guerreiro, “Shape Memory Alloys Behaviour: A Review,” Procedia Eng., vol. 114, pp. 776–783, 2015.spa
dc.relation.references[263] R. J. Good, “Contact angle, wetting, and adhesion: a critical review,” J. Adhes. Sci. Technol., vol. 6, no. 12, pp. 1269–1302, Jan. 1992.spa
dc.relation.references[264] D. K. Owens and R. C. Wendt, “Estimation of the surface free energy of polymers,” J. Appl. Polym. Sci., vol. 13, no. 8, pp. 1741–1747, Aug. 1969.spa
dc.relation.references[265] K. A. Vijayalakshmi, M. Mekala, C. P. Yoganand, and K. Navaneetha Pandiyaraj, “Studies on Modification of Surface Properties in Polycarbonate (PC) Film Induced by DC Glow Discharge Plasma,” Int. J. Polym. Sci., vol. 2011, pp. 1–7, 2011.spa
dc.relation.references[266] D. G. Petlin, S. I. Tverdokhlebov, and Y. G. Anissimov, “Plasma treatment as an efficient tool for controlled drug release from polymeric materials: A review,” J. Controlled Release, vol. 266, pp. 57–74, Nov. 2017.spa
dc.relation.references[267] M. Walo, G. Przybytniak, K. Łyczko, and M. Piątek-Hnat, “The effect of hard/soft segment composition on radiation stability of poly(ester-urethane)s,” Radiat. Phys. Chem., vol. 94, pp. 18–21, Jan. 2014spa
dc.relation.references[268] A. Menges and S. Reichert, “Performative Wood: Physically Programming the Responsive Architecture of the HygroScope and HygroSkin Projects,” Archit. Des., vol. 85, no. 5, pp. 66–73, Sep. 2015.spa
dc.relation.references[269] J. Lim, Bio-structural: analogues in architecture. Amsterdam: BIS-Publishers, 2009.spa
dc.relation.references[270] K. M. Al-Obaidi, M. Azzam Ismail, H. Hussein, and A. M. Abdul Rahman, “Biomimetic building skins: An adaptive approach,” Renew. Sustain. Energy Rev., vol. 79, pp. 1472–1491, Nov. 2017.spa
dc.relation.references[271] N. Oxman, Design at the intersection of technology and biology. 2016.spa
dc.relation.references[272] M. Garcia-Holguera, O. G. Clark, A. Sprecher, and S. Gaskin, “Ecosystem biomimetics for resource use optimization in buildings,” Build. Res. Inf., vol. 44, no. 3, pp. 263–278, Apr. 2016.spa
dc.relation.references[273] Y. Xing, P. Jones, M. Bosch, I. Donnison, M. Spear, and G. Ormondroyd, “Exploring design principles of biological and living building envelopes: what can we learn from plant cell walls?,” Intell. Build. Int., pp. 1–25, Nov. 2017.spa
dc.relation.references[274] S. Poppinga et al., “Toward a New Generation of Smart Biomimetic Actuators for Architecture,” Adv. Mater., vol. 30, no. 19, p. 1703653, May 2018.spa
dc.relation.references[275] L. L. Howell, Compliant mechanisms. New York: Wiley, 2001.spa
dc.relation.references[276] L. L. Howell, S. P. Magleby, and B. M. Olsen, Eds., Handbook of compliant mechanisms. Chichester, West Sussex, United Kingdom ; Hoboken: John Wiley & Sons, Inc, 2013.spa
dc.relation.references[277] A. Müller, “Generic mobility of rigid body mechanisms,” Mech. Mach. Theory, vol. 44, no. 6, pp. 1240–1255, Jun. 2009.spa
dc.relation.references[278] V. Kumar, J. Schmiedeler, S. V. Sreenivasan, and H.-J. Su, Eds., Advances in Mechanisms, Robotics and Design Education and Research, vol. 14. Heidelberg: Springer International Publishing, 2013.spa
dc.relation.references[279] A. G. Volkov, J. C. Foster, K. D. Baker, and V. S. Markin, “Mechanical and electrical anisotropy in Mimosa pudica pulvini,” Plant Signal. Behav., vol. 5, no. 10, pp. 1211–1221, Oct. 2010.spa
dc.relation.references[280] Q. Xu and Y. Li, “Analytical modeling, optimization and testing of a compound bridge-type compliant displacement amplifier,” Mech. Mach. Theory, vol. 46, no. 2, pp. 183–200, Feb. 2011.spa
dc.relation.references[281] A. G. Volkov and V. S. Markin, “Active and Passive Electrical Signaling in Plants,” in Progress in Botany, vol. 76, U. Lüttge and W. Beyschlag, Eds. Cham: Springer International Publishing, 2015, pp. 143–176.spa
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.ddc690 - Construcción de edificiosspa
dc.subject.ddc720 - Arquitectura::721 - Materiales arquitectónicos y elementos estructuralesspa
dc.subject.lembCurvas de resistenciaspa
dc.subject.lembPolímeros cristalinosspa
dc.subject.proposalKinetic architectureeng
dc.subject.proposalCrystallization-induced elongationeng
dc.subject.proposalShape memory actuatoreng
dc.subject.proposalAdaptive building skinseng
dc.subject.proposalElongación inducida por cristalizaciónspa
dc.subject.proposalActuador con memoria de formaspa
dc.subject.proposalPieles arquitectónicas adaptativasspa
dc.titleThermo-sensitive actuator capabilities assessment of a composite material based on a two-way shape memory semicrystalline polymereng
dc.title.translatedEvaluación del potencial de actuación termosensible de un material compuesto a base de un polímero semicristalino con memoria de forma bidireccionalspa
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.versioninfo:eu-repo/semantics/acceptedVersionspa
oaire.accessrightshttp://purl.org/coar/access_right/c_abf2spa
oaire.awardtitleProject 40812 Universidad Nacional de Colombia, Support for postgraduate thesis, 2017-2018 national callspa
oaire.awardtitleProject 4198 Fundación para la promoción de la Investigación y la tecnología, affiliated to Banco de la Republica de Colombia cultural networkspa
oaire.fundernameUniversidad Nacional de Colombiaspa
oaire.fundernameFundación para la promoción de la Investigación y la tecnología - Banco de la Republica de Colombiaspa

Archivos

Bloque original

Mostrando 1 - 1 de 1
Cargando...
Miniatura
Nombre:
1053821309.2018.pdf
Tamaño:
6.81 MB
Formato:
Adobe Portable Document Format
Descripción:
Tesis Maestría en Construcción

Bloque de licencias

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