A morphological approach for kinetic façade design process to improve visual and thermal comfort: Review
Tài liệu tham khảo
International Energy Agency, 2013
Wang, 2009, Case study of zero energy house design in UK, Energy Build., 41, 10.1016/j.enbuild.2009.07.001
Herzog, 2004
Oxford dictionary press
Zaera-polo, 2014
Badarnah, 2017, Biomimetic approaches to building envelope design for environmental adaptation, Buildings, 7, 40, 10.3390/buildings7020040
Zuk, 1970, 14
Loonen, 2017, Review of current status, requirements and opportunities for building performance simulation of adaptive facades, Journal of Building Performance Simulation, 10, 205, 10.1080/19401493.2016.1152303
AHR. International Award Winning Architectural Design Practice, AL BAHR TOWERS, Retrieved Dec 4, 2018, from http://www.ahr-global.com/Al-Bahr-Towers.
Asefi, 2009, Design management model for transformable architectural structures
Asefi, 2012, Transformation and movement in architecture: the marriage among art, engineering and technology, Procedia - Social and Behavioral Sciences, 51, 1005, 10.1016/j.sbspro.2012.08.278
Ramzy, 2011, Kinetic Systems in Architecture: New Approach for Environmental Control Systems and Context-Sensitive Buildings”, Sustainable Cities and Society, vol. 1, 170, 10.1016/j.scs.2011.07.004
Fouad, 2012, Design methodology: kinetic architecture (M.Sc. thesis, 44
Werner, 2013, 49
Alkhayyat, 2013, 78
Bakker, 2014, User satisfaction and interaction with automated dynamic facades: a pilot study, Build. Environ., 78, 44, 10.1016/j.buildenv.2014.04.007
Pesenti, 2015, Kinetic solar skin: a responsive folding technique, Energy Procedia, 70, 661, 10.1016/j.egypro.2015.02.174
Mahmoud, 2016, Parametric-based designs for kinetic facades to optimize daylight performance: comparing rotation and translation kinetic motion for hexagonal facade patterns, Sol. Energy, 126, 111, 10.1016/j.solener.2015.12.039
Grobman, 2016, Microclimate on building envelopes: testing geometry manipulations as an approach for increasing building envelopes' thermal performance, Architect. Sci. Rev., 59, 269, 10.1080/00038628.2015.1025688
Grobman, 2017, External shading in buildings: comparative analysis of daylighting performance in static and kinetic operation scenarios, Architect. Sci. Rev., 60, 126, 10.1080/00038628.2016.1266991
Elzeyadi, 2017, The impacts of dynamic façade shading typologies on building energy performance and occupant's multi-comfort, Architect. Sci. Rev., 60, 316, 10.1080/00038628.2017.1337558
Megahed, 2017, Understanding kinetic architecture: typology, classification, and design strategy, Architect. Eng. Des. Manag., 13, 130, 10.1080/17452007.2016.1203676
Soflaei, 2016, Traditional Iranian courtyards as microclimate modifiers by considering orientation, dimensions, and proportions, Frontiers of Architectural Research, 5, 225, 10.1016/j.foar.2016.02.002
Al-Masri, 2012, Courtyard housing in midrise buildings: an environmental assessment in hot-arid climate, Renew. Sustain. Energy Rev., 16, 1892, 10.1016/j.rser.2012.01.008
Meir, 1995, On the microclimatic behavior of two semi-enclosed attached courtyards in a hot dry region, Build. Environ., 30, 563, 10.1016/0360-1323(95)00018-2
Aldawoud, 2008, Thermal performance of courtyard buildings, Energy Build., 40, 906, 10.1016/j.enbuild.2007.07.007
Malekzadeh, 2008, Towards the integrated thermal simulation of indoor and outdoor building spaces
Heidari, 2010, A deep courtyard as the best building form for desert climate, an introduction to effects of air movement (Case study: Yazd), Desert, 15, 19
Sadafi, 2011, Evaluating thermal effects of internal courtyard in a tropical terrace house by computational simulation, Energy Build., 43, 887, 10.1016/j.enbuild.2010.12.009
Berkovic, 2012, Study of thermal comfort in courtyards in a hot arid climate, Sol. Energy, 86, 1173, 10.1016/j.solener.2012.01.010
Almhafdy, 2013, J. Yahya. Courtyard design variants and microclimate performance, Procedia - Social and Behavioral Sciences, 101, 10.1016/j.sbspro.2013.07.190
S. Cho, N. Mohammadzadeh. Thermal comfort analysis of a traditional Iranian courtyard for the design of sustainable residential buildings. Proceedings of BS2013: 13th Conference of International Building Performance Simulation Association, Chambéry, France. Available: www.ibpsa.org/proceedings/BS2013/p_2377.pdf.
Ghaffarianhoseini, 2015, Thermal performance characteristics of unshaded courtyards in hot and humid climates, Build. Environ., 87, 154, 10.1016/j.buildenv.2015.02.001
Abdulkareem, 2016, Thermal comfort through the microclimates of the courtyard. A critical review of the middle-eastern courtyard house as a climatic response, Procedia - Social and Behavioral Sciences, 216, 662, 10.1016/j.sbspro.2015.12.054
Chandel, 2016, Review of energy efficient features in vernacular architecture for improving indoor thermal comfort conditions, Renew. Sustain. Energy Rev., 65, 459, 10.1016/j.rser.2016.07.038
Nasrollahi, 2017, Numerical evaluation of thermal comfort in traditional courtyards to develop new microclimate design in a hot and dry climate, Sustainable Cities and Society, 35, 449, 10.1016/j.scs.2017.08.017
Soflaei, 2017, The impact of courtyard design variants on shading performance in hot- arid climates of Iran, Energy Build., 143, 71, 10.1016/j.enbuild.2017.03.027
Barozzi, 2016, The sustainability of adaptive envelopes: developments of kinetic architecture, Procedia Engineering, 155, 275, 10.1016/j.proeng.2016.08.029
Panopoulos, 2017, Smart facades for nonresidential buildings: an assessment, Adv. Build. Energy Res., 11, 26, 10.1080/17512549.2015.1119058
Kuipers
Tzempelikos, 2017, 1
Michael, 2017, Assessment of natural lighting performance and visual comfort of educational architecture in Southern Europe: the case of typical educational school premises in Cyprus, Energy Build., 140, 443, 10.1016/j.enbuild.2016.12.087
Carlucci, 2015, A review of indices for assessing visual comfort with a view to their use in optimization processes to support building integrated design, Renew. Sustain. Energy Rev., 47, 1016, 10.1016/j.rser.2015.03.062
Nasrollahi, 2016, Daylight illuminance in urban environments for visual comfort and energy performance, Renew. Sustain. Energy Rev., 66, 861, 10.1016/j.rser.2016.08.052
Reinhart, 2011, Daylight performance predictions, 536
Hosseini, 2018, Quantitative investigation through climate-based daylight metrics of visual comfort due to colorful glass and orosi windows in Iranian architecture, Journal of Daylighting, 5, 21, 10.15627/jd.2018.5
Oropeza-Perez, 2017, Adaptive thermal comfort in the main Mexican climate conditions with and without passive cooling, Energy Build., 145, 251, 10.1016/j.enbuild.2017.04.031
Djamila, 2017, Indoor thermal comfort predictions: selected issues and trends, Renew. Sustain. Energy Rev., 74, 569, 10.1016/j.rser.2017.02.076
Ajaji, 2015, Thermal comfort and visual comfort in an office building equipped with smart electrochromic glazing: an experimental study, Energy Procedia, 78, 2464, 10.1016/j.egypro.2015.11.230
Montazeri, 2015, CFD analysis of forced convective heat transfer coefficients at windward building facades : influence of building geometry, J. Wind Eng. Ind. Aerod., 146, 102, 10.1016/j.jweia.2015.07.007
Yao, 2014, An investigation into the impact of movable solar shades on energy, indoor thermal and visual comfort improvements, Build. Environ., 71, 24_32, 10.1016/j.buildenv.2013.09.011
Giarma, 2017, Daylighting and visual comfort in buildings environmental performance assessment tools: a critical review, Procedia Environmental Sciences, 38, 522, 10.1016/j.proenv.2017.03.116
Korsavi, 2016, Visual comfort assessment of daylit and sunlit areas: a longitudinalfield survey in classrooms in Kashan, Iran, Energy Build., 128, 305, 10.1016/j.enbuild.2016.06.091
Marszal, 2011, Zero energy building – a review of definitions and calculation methodologies, Energy Build., 43, 971, 10.1016/j.enbuild.2010.12.022
Ferrante, 2012, Zero- and low-energy housing for the Mediterranean climate, Adv. Build. Energy Res., 6, 81, 10.1080/17512549.2012.672003
European Parliament
Massachusetts Zero Net Energy Buildings Task Force, 2009, vol. 25
Özahi, 2017, A comparative thermodynamic and economic analysis and assessment of a conventional HVAC and a VRF system in a social and cultural center building, Energy Build., 140, 196, 10.1016/j.enbuild.2017.02.008
Kumar, 2005, Performance evaluation of multi- passive solar applications of a non air- conditioned building, Int. J. Environ. Technol. Manag., 5, 60, 10.1504/IJETM.2005.006507
G. Kima, H. S. Lim, T. S. Lim, L. Schaefer, J. T. Kim. Comparative advantage of an exterior shading device in thermal performance for residential buildings. Energy Build. 46:105–111. Available from: https://doi.org/10.1016/j.enbuild.2011.10.040.
Grynning, 2014, Solar shading control strategies in cold climates-Heating, cooling demand and daylight availability in office spaces, Sol. Energy, 107, 182, 10.1016/j.solener.2014.06.007
Zhang, 2017, Optimization of thermal and daylight performance of school buildings based on a multi-objective genetic algorithm in the cold climate of China”, Energy Build., 139, 371, 10.1016/j.enbuild.2017.01.048
Keskin, 2016, A study on the sustainable architectural characteristics of traditional anatolian houses and current building design precepts, Procedia - Social and Behavioral Sciences, 216, 810, 10.1016/j.sbspro.2015.12.078
Singh, 2016, Assessment of thermal comfort in existing pre-1945 residential building stock, Energy, 98, 122, 10.1016/j.energy.2016.01.030
Abdullah, 2016, Defining issue of thermal comfort control through urban mosque façade design, Procedia - Social and Behavioral Sciences, 234, 416, 10.1016/j.sbspro.2016.10.259
Zomorodian, 2013, Architectural design optimization of school buildings for reduction of energy demand in hot and dry climates of Iran, Int.J. Archit. Eng. Urban Plan., 23, 1
Perez, 2009, Climatic considerations in school building design in the hot–humid climate for reducing energy consumption, Appl. Energy, 86, 340, 10.1016/j.apenergy.2008.05.007
Stevanović, 2013, Optimization of passive solar design strategies: a review, Renew. Sustain. Energy Rev., 25, 177, 10.1016/j.rser.2013.04.028
Colaco, 2008, Prospective techniques of effective daylight harvesting in commercial buildings by employing window glazing, dynamic shading devices and dimming control – a literature review, Build Simul, 1, 279, 10.1007/s12273-008-8126-8
Konstantoglou, 2016, Dynamic operation of daylighting and shading systems: a literature review, Renew. Sustain. Energy Rev., 60, 268, 10.1016/j.rser.2015.12.246
Megahed, 2017, Origami folding and its potential for architecture students, Des. J., 20, 279
Chow, 2005, Hong Kong solar radiation on building facades evaluated by numerical models, Appl. Therm. Eng., 25, 1908, 10.1016/j.applthermaleng.2004.11.019
Chow, 2006, Potential application of a centralized solar water-heating system for a high-rise residential building in Hong Kong, Appl. Energy, 83, 42, 10.1016/j.apenergy.2005.01.006
O'Hegarty, 2016, Review and analysis of solar thermal facades, Sol. Energy, 135, 408, 10.1016/j.solener.2016.06.006
Alonso, 2017, Effect of façade surface finish on building energy rehabilitation, Sol. Energy, 146, 470, 10.1016/j.solener.2017.03.009
Zinzi, 2016, Exploring the potentialities of cool facades to improve the thermal response of Mediterranean residential buildings, Sol. Energy, 135, 386, 10.1016/j.solener.2016.06.021
Bohnenberger, 2012, Sensing material systems-novel design strategies, Int. J. Archit. Comput., 10, 361, 10.1260/1478-0771.10.3.361
Khoo, 2011, Soft responsive kinetic system: an elastic transformable architectural skin for climatic and visual control, 334
Addington, 2005, 109
Vanaga, 2015, First steps to develop biomimicry ideas, Energy Procedia, 72, 307, 10.1016/j.egypro.2015.06.044
Tavsan, 2014, Biomimicry in architectural design education, vol. 182, 489
Tavsan, 2015, Biomimicry in furniture design, Procedia - Social and Behavioral Sciences, 197, 2285, 10.1016/j.sbspro.2015.07.255
Hu, 2013, The gift from nature: bio-inspired strategy for developing innovative bridges, JBE, 10, 405
Aziz, 2016, Biomimicry as an approach for bio-inspired structure with the aid of computation, Alexandria Engineering Journal, 55, 707, 10.1016/j.aej.2015.10.015
Hyde, 2015, From biomimetic design to nearly zero energy building, Architect. Sci. Rev., 58, 103, 10.1080/00038628.2015.1016688
Ouzounis, 2014, Spectral effects of supplementary lighting on the secondary metabolites in roses, chrysanthemums, and campanulas, J. Plant Physiol., 171, 1491, 10.1016/j.jplph.2014.06.012
Kooi, 2016, Plant biology: flower orientation, temperature regulation and pollinator attraction, Curr. Biol., 26, R1143
Pawlik, 2016, rock, and regolith: biomechanical and biochemical weathering by trees and its impact on hillslopes—a critical literature review, Earth Sci. Rev., 159, 142, 10.1016/j.earscirev.2016.06.002
Pasquale, 2012, Effects of streamflow variability on the vertical root density distribution of willow cutting experiments, Ecol. Eng., 40, 167, 10.1016/j.ecoleng.2011.12.002
Guo, 2015
Radwana, 2016, AN APPROACH, FOR ENERGY EFFICIENT BUILDING SKIN DESIGN, Procedia Environmental Sciences, 34, 178, 10.1016/j.proenv.2016.04.017
Lurie-Luke, 2014, Product and technology innovation: what can biomimicry inspire?, Biotechnol. Adv., 32, 1494, 10.1016/j.biotechadv.2014.10.002
Schleicher, 2015, A methodology for transferring principles of plant movements to elastic systems in architecture, Comput. Aided Des., 60, 105, 10.1016/j.cad.2014.01.005
Badarnah, 2016, Water management lessons from nature for applications to buildings, Procedia Engineering, 145, 1432, 10.1016/j.proeng.2016.04.180
Badarnah, 2016, Light management lessons from nature for building applications, Procedia Engineering, 145, 595, 10.1016/j.proeng.2016.04.049
Badarnah, 2015, A biophysical framework of heat regulation strategies for the design of biomimetic building envelopes, Procedia Engineering, 118, 1225, 10.1016/j.proeng.2015.08.474
Sokhandan, 2016, A novel biologically inspired computational framework for visual tracking task, Biologically Inspired Cognitive Architectures, 18, 68, 10.1016/j.bica.2016.09.006
Chen, 2016, Mathematically characterizing natural systems for adaptable, biomimetic design, Procedia Engineering, 145, 497, 10.1016/j.proeng.2016.04.031
Ruszaj, 2016, Some aspects of bioinspirations in energy production and consumptions, Procedia Engineering, 157, 465, 10.1016/j.proeng.2016.08.390
Yurtkurana, 2013, Learning from nature: biomimetic design in architectural education, Procedia - Social and Behavioral Sciences, 89, 633, 10.1016/j.sbspro.2013.08.907
Risbud, 2013, Solution-based techniques for biomimetics and bioreplication, 359
Shu, 2011, Biologically inspired design, CIRP Ann. - Manuf. Technol., 60, 673, 10.1016/j.cirp.2011.06.001
Helms, 2009, Biologically inspired design: process and products, Des. Stud., 30, 606, 10.1016/j.destud.2009.04.003
Knippers, 2012, Design and construction principles in nature and architecture, Bioinspiration Biomimetics, 7, 015002, 10.1088/1748-3182/7/1/015002
Gruber, 2012, Has biomimetics arrived in architecture?, Bioinspiration Biomimetics, 7, 010201, 10.1088/1748-3182/7/1/010201
Göran, 2015
Nour ElDin, 2016, Biomimetic potentials for building envelope adaptation in Egypt, Procedia Environmental Sciences, 34, 375, 10.1016/j.proenv.2016.04.033
Bouabdallah, 2016, Biomimicry as an approach for sustainable architecture case of arid regions with hot and dry climate, AIP Conference Proceedings, 1758, 020003, 10.1063/1.4959379
Brodoceanu, 2016, Biomimetics: process, tools and practice, Bioinspiration Biomimetics, 11, 051001, 10.1088/1748-3190/11/5/051001
Rivière, 2017, Motions of leaves and stems, from growth to potential use, Phys. Biol., 14, 10.1088/1478-3975/aa5945
Li, 2017, Plant-inspired adaptive structures and materials for morphing and actuation: a review, Bioinspiration Biomimetics, 12, 011001, 10.1088/1748-3190/12/1/011001
Speck, 2017, Biomimetic bio-inspired biomorph sustainable? An attempt to classify and clarify biology-derived technical developments, Bioinspiration Biomimetics, 12, 011004, 10.1088/1748-3190/12/1/011004
Al-Obaidi, 2017, Biomimetic building skins: an adaptive approach, Renew. Sustain. Energy Rev., 79, 1472, 10.1016/j.rser.2017.05.028
López, 2017, How plants inspire façades. From plants to architecture: biomimetic principles for the development of adaptive architectural envelopes, Renew. Sustain. Energy Rev., 67, 692, 10.1016/j.rser.2016.09.018
Körner, 2017, “Flectofold—a biomimetic compliant shading device for complex free form facades”, Smart Mater. Struct., 27
Charpentier, 2017, Kinematic amplification strategies in plants and engineering, Smart Mater. Struct., 26, 10.1088/1361-665X/aa640f
Sugár, 2017, Bionics in architecture, YBL J. Built Environ., 5, 10.1515/jbe-2017-0003
Schieber, 2018, Hindwings of insects as concept generator for hingeless foldable shading systems, Bioinspiration Biomimetics, 13, 016012, 10.1088/1748-3190/aa979c
Oxman, 2017, Thinking difference: theories and models of parametric design thinking, 2Design Studies, 52, 4, 10.1016/j.destud.2017.06.001
Harding, 2017, Meta-parametric design, 3Design Studies, 52, 73, 10.1016/j.destud.2016.09.005
Bhooshan, 2017, Parametric design thinking: a case-study of practice-embedded architectural research, Des. Stud., 52, 115, 10.1016/j.destud.2017.05.003
Wortmann, 2017, Differentiating parametric design: digital workflows in contemporary architecture and construction, Des. Stud., 52, 173, 10.1016/j.destud.2017.05.004
Terzidis, 2006
Gerber, 2017, A multi-agent approach for performance based architecture: design exploring geometry, user, and environmental agencies in façades, Autom. ConStruct., 76, 45, 10.1016/j.autcon.2017.01.001
Lin, 2014, Designing-in performance: a framework for evolutionary energy performance feedback in early stage design, Autom. ConStruct., 38, 59, 10.1016/j.autcon.2013.10.007
Khabazi, 2009
Jordan, 1992, The exponential convergence of Bayesian learning in normal form games, Games Econ. Behav., 4, 202, 10.1016/0899-8256(92)90015-K
Hemsath, 2015, Building design with energy performance as primary agent, vol. 78, 3049
Hyperbody, 2012