Araştırma Makalesi
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Cephede Adaptiflik İncelemesi: Adaptif Cephe Sınıflandırma Kriterleri Üzerine Bir Araştırma

Yıl 2024, Cilt: 17 Sayı: 5, 1925 - 1938, 17.09.2024
https://doi.org/10.35674/kent.1428008

Öz

Bu araştırmada, Avrupa, Asya ve Avustralya'da konumlanan üç farklı binanın cephe sınıflandırılması, literatürdeki adaptif cephe sınıflandırma modellerinin kriterleri kullanılarak geliştirilen bir sınıflandırma modeli üzerinden detaylı bir şekilde incelenmiştir. Kullanılan modelde, cephe tasarımını etkileyen kontrol parametreleri, fiziksel çevre ölçütleri, cephenin adaptasyon yöntemi, kontrol sistemi ve tekniği, adaptasyonun görünürlüğü ve zaman ölçeği kriterleri titizlikle ele alınmıştır. Araştırmada mimarideki tarihsel gelişim, çağdaş trendler ve temel parametreler kapsamlı bir şekilde irdelenmiştir. Adaptif mimarinin doğuşuyla birlikte, dinamik çevresel ve kullanıcı ihtiyaçlarına duyarlı unsurların tasarımındaki evrimlere odaklanan çabalara da geniş bir perspektif sunulmuştur. Ayrıca, adaptifliğin yapı kabuğu ve cepheyle entegrasyonu, adaptif cephelerin tarihsel evrimi ve konuyla ilgili önemli bileşenlerin evrimiyle ilgili derinlemesine bir analiz sunulmuştur. Söz konusu çalışma, adaptif mimari ve cephe konularında bilgi sunmanın yanı sıra, kültürel ve coğrafi farklılıkları içeren üç kıtadaki adaptif cephe örneklerini anlamak ve sınıflandırmak adına önemli bir katkı sağlamayı amaçlamaktadır. Bu kıtalar arası karşılaştırma, adaptif cephe tasarımının global ölçekte nasıl çeşitlendiğini ve benzerliklerin yanı sıra farklılıkları nasıl barındırdığını da dile getirmektedir.

Etik Beyan

-

Destekleyen Kurum

-

Proje Numarası

yok

Teşekkür

-

Kaynakça

  • Addington, M., & Schodek, D. (2005). Smart Materials and New Technologies: For the Architecture and Design Professions. Routledge.
  • Addington, M. (2009). Contingent behaviours. Architectural Design, 79(3), 12-17.
  • Aelenei, L. E., Aelenei, D., Romano, R., Mazzucchelli, E. S., Brzezicki, M., & Rico-Martinez, J. M. (2018). Case studies: Adaptive facade network. TU Delft Open.
  • Altın, M., & Orhon, A. V. (2014). Akıllı Yapı Cepheleri ve Sürdürülebilirlik. 7. Ulusal Çatı ve Cephe Sempozyumu,3-4 April 2014 (pp. 1-9). Yildiz Technical University, İstanbul, Türkiye.
  • Ayçam, İ. (2011). Enerji etkin ofis binalarında gelişmiş cephe sistemlerinin incelenmesi. X. Ulusal Tesisat Mühendisliği Kongresi, 13-16 April 2011 (pp. 1593-1609). İzmir, Türkiye.
  • Barraud, E. (2013). Stained glass solar windows for the Swiss Tech Convention Center. Chimia, 67(3), 181-182.
  • Başarır, B., & Altun, M. C. (2017). A Classification Approach for Adaptive Façades. ICBEST Istanbul, Interdisciplinary Perspectives for Future Building Envelopes, 15-18 May 2017 (pp. 756-769).
  • Istanbul, Türkiye.
  • Bedon, C., Honfi, D., Kozłowski, M., Machalická, K. V., Santos, F., Wüest, T., Eliášová, M. & Vokáč, M. (2018). Key Structural Aspects for Adaptive Facades - Activity Progress from the EU-COST Action TU1403 ‘Structural’ Task Group. International Journal of Structural Glass and Advanced Materials Research, 2(1), 135-154. https://doi.org/10.3844/sgamrsp.2018.135.154
  • Belek, A. N. & Yamaçlı, R. (2023). Adaptif cephe sistemlerinin sürdürülebilir tasarım kriterlerine yönelik tasarım çözümleri. ArtGRID, 5(2), 216-239. https://doi.org/10.57165/artgrid.1357657
  • Bisquert, J. (2014). Dye Solar Cell Facade at SwissTech Convention Center at EPFL by Solaronix. www.juanbisquert.wordpress.com. https://juanbisquert.wordpress.com/2014/04/08/dye-solar-cell-facade-at-swisstech-covention-center-at-epfl-by-solaronix/
  • de Boer, B. J., Ruijg, G. J., Bakker, L. G., Kornaat, W., Zonneveldt, L., Kurvers, S. R., ... & Trcka, M. (2011). Energy saving potential of climate adaptive building shells-Inverse modelling of optimal thermal and visual behaviour. In Adaptive Architecture, an international conference, London.
  • Fox, M.A., & Yeh, B.P. (2000). Intelligent Kinetic Systems in Architecture. In P.Nixon, G. Lacey, & S. Dobson (Eds.) Managing Interactions in Smart Environments (pp.91-103). Springer, London. https://doi.org/10.1007/978-1-4471-0743-9_9
  • Gök, M., & Yiğit, S. (2017). Türkiye’deki Büyükşehirlerin Sürdürülebilirlik Kriterleri Açısından İncelenmesi. Yönetim Bilimleri Dergisi, 15(30), 253-273.
  • Heiselberg, P. (2012). IEA ECBCS Annex 44 Integrating Environmentally Responsive Elements in Buildings Project Summary Report. AECOM House.
  • Hensel, M., Sunguroglu D., & Menges, A. (2008). Material Performance. Architectural Design, 78(2), 34-41.
  • Jäger, N. (2017). Interacting with adaptive architecture. Interactions, 24(6), 62-65. https://doi.org/10.1145/3137113
  • Kamara, J., & Dejaco, M. (2017). Taking stock on building adaptability research and practice. International Journal of Building Pathology and Adaptation, 35(4), 282-283. https://doi.org/10.1108/ijbpa-09-2017-0045
  • Kızılörenli, E., & Maden, F. (2021, June). A Comparative Study on Responsive Façade Systems. In Proceedings of the International Conference of Contemporary Affairs in Architecture and Urbanism-ICCAUA (Vol. 4, No. 1, pp. 15-23).
  • Knaack, U., Luible, A., Overend, M., Aelenei, L., Perino, M., Wellershof, F., & Brzezicki, M. (2015). Adaptive facade network Europe. TU Delft Open.
  • Kon, N., (2011). Sebrae Headquarters. www.archdaily.com. https://www.archdaily.com/123791/sebraeheadquartersgruposp/57457696e58ece7952000007-sebrae-headquarters-gruposp-photo?next_project=no
  • Köppen, W., & Geiger, R. (Eds.). (1930). Handbuch der Klimatologie (Vol. 1). Berlin: Gebrüder Borntraeger.
  • Looman, R. (2017). Climate-Responsive Design: a framework for an energy concept design-decision support tool for architects using principles of climate-responsive. TU DELFT. https://doi.org/10.7480/abe.2017.1.1643
  • Loonen, R. C. G. M., Trcka, M., Cóstola, D., & Hensen, J. L. M. (2010). Performance simulation of climate adaptive building shells-Smart Energy Glass as a case study. In 8th International Conference on System Simulation in Buildings (SSB 2010), December 13-15, 2010, Liège, Belgium (pp. 1-19).
  • Loonen, R. C., Trčka, M., Cóstola, D., & Hensen, J. L. (2013). Climate adaptive building shells: State-of- the-art and future challenges. Renewable and sustainable energy reviews, 25, 483-493. https://doi.org/10.1016/j.rser.2013.04.016
  • Loonen, R. C., Rico-Martinez, J. M., Favoino, F., Brzezicki, M., Ménézo, C., La Ferla, G., & Aelenei, L. L. (2015). Design for façade adaptability: Towards a unified and systematic characterization. In 10th Conference on Advanced Building Skins, 3-4 November 2015 (pp. 1284-1294). Bern,
  • Switzerland. Economic Forum.
  • Mésároš, P., Spišáková, M., Mandičák, T., Čabala, J., & Oravec, M. (2021). Adaptive design of formworks for building renovation considering the sustainability of construction in BIM environment—case study. Sustainability, 13(2), 1-20. https://doi.org/10.3390/su13020799
  • Moloney, J. (2011). Designing Kinetics for Architectural Facades. Routledge. https://doi.org/10.4324/9780203814703
  • Negroponte, N. (1975). The Architecture Machine. Computer-Aided Design, 7(3), 190-195.
  • Peel, M. C., Finlayson, B. L., & McMahon, T. A. (2016). World Köppen Classification. Wikimedia
  • Commons.https://commons.wikimedia.org/wiki/File:World_Köppen_Classification_(with_authors).svg#file
  • Ramzy, N., & Fayed, H. (2011). Kinetic systems in architecture: New approach for environmental control systems and context-sensitive buildings. Sustainable Cities and Society, 1(3), 170-177. https://doi.org/10.1016/j.scs.2011.07.004
  • Schmidt III, R., & Austin, S. (2016). Adaptable architecture: Theory and practice. Routledge.
  • Shakouri, H., & Banihashemi, S. (2012). Developing an empirical predictive energy-rating model for windows by using Artificial Neural Network, International Journal of Green Energy, 16(13), 961-970. https://doi.org/10.1080/15435075. 2012.738451.
  • Voigt, M. P., Roth, D., & Kreimeyer, M. (2023). Systematic classification of adaptive façades– preparing a database. Proceedings of the Design Society, 3, 3295-3304. https://doi.org/10.1017/pds.2023.330
  • URL 1. (n.d.). Carabanchel Social Housing. Harward University. https://www.gsd.harvard.edu/project/carabanchel-social-housing/
  • URL 2. (2008). Carabanchel Social Housing. www.archdaily.com. https://www.archdaily.com/1580/caranbachel-housing-foreign-office-architects/500ff55928ba0d422200005c-caranbachel-housing-foreign-office-architects-image
  • URL 3. (2008). Façade Detail of Carabanchel Social Housing. www.archdaily.com. https://www.archdaily.com/1580/caranbachel-housing-foreign-office-architects/500ff54f28ba0d422200005a-caranbachel-housing-foreign-office-architects-image?next_project=no

Examining Facade Adaptability: A Study of Adaptive Facade Classification Criteria

Yıl 2024, Cilt: 17 Sayı: 5, 1925 - 1938, 17.09.2024
https://doi.org/10.35674/kent.1428008

Öz

In this research, the facade classification of three different buildings located in Europe, Asia and Australia is carried out by using a classification model developed by utilising the criteria of some adaptive facade classification models in the literature. The control parameters affecting the facade design, physical environment criteria, facade adaptation method, control system and technique, visibility of adaptation and time scale criteria in the model are discussed in detail. Besides, the historical development, contemporary trends and basic parameters on architecture are analysed comprehensively. The emergence of adaptive architecture is discussed, as well as efforts to demonstrate changes in the design of elements sensitive to dynamic environmental and user needs. Furthermore, how adaptability is integrated with the building envelope and facade, the historical evolution of adaptive facades, and the development of key components are also examined. Thus, this study aims to make an important contribution to understanding adaptive architecture and adaptive facades while categorising examples of adaptive facades across three continents, including cultural and geographical differences.

Proje Numarası

yok

Kaynakça

  • Addington, M., & Schodek, D. (2005). Smart Materials and New Technologies: For the Architecture and Design Professions. Routledge.
  • Addington, M. (2009). Contingent behaviours. Architectural Design, 79(3), 12-17.
  • Aelenei, L. E., Aelenei, D., Romano, R., Mazzucchelli, E. S., Brzezicki, M., & Rico-Martinez, J. M. (2018). Case studies: Adaptive facade network. TU Delft Open.
  • Altın, M., & Orhon, A. V. (2014). Akıllı Yapı Cepheleri ve Sürdürülebilirlik. 7. Ulusal Çatı ve Cephe Sempozyumu,3-4 April 2014 (pp. 1-9). Yildiz Technical University, İstanbul, Türkiye.
  • Ayçam, İ. (2011). Enerji etkin ofis binalarında gelişmiş cephe sistemlerinin incelenmesi. X. Ulusal Tesisat Mühendisliği Kongresi, 13-16 April 2011 (pp. 1593-1609). İzmir, Türkiye.
  • Barraud, E. (2013). Stained glass solar windows for the Swiss Tech Convention Center. Chimia, 67(3), 181-182.
  • Başarır, B., & Altun, M. C. (2017). A Classification Approach for Adaptive Façades. ICBEST Istanbul, Interdisciplinary Perspectives for Future Building Envelopes, 15-18 May 2017 (pp. 756-769).
  • Istanbul, Türkiye.
  • Bedon, C., Honfi, D., Kozłowski, M., Machalická, K. V., Santos, F., Wüest, T., Eliášová, M. & Vokáč, M. (2018). Key Structural Aspects for Adaptive Facades - Activity Progress from the EU-COST Action TU1403 ‘Structural’ Task Group. International Journal of Structural Glass and Advanced Materials Research, 2(1), 135-154. https://doi.org/10.3844/sgamrsp.2018.135.154
  • Belek, A. N. & Yamaçlı, R. (2023). Adaptif cephe sistemlerinin sürdürülebilir tasarım kriterlerine yönelik tasarım çözümleri. ArtGRID, 5(2), 216-239. https://doi.org/10.57165/artgrid.1357657
  • Bisquert, J. (2014). Dye Solar Cell Facade at SwissTech Convention Center at EPFL by Solaronix. www.juanbisquert.wordpress.com. https://juanbisquert.wordpress.com/2014/04/08/dye-solar-cell-facade-at-swisstech-covention-center-at-epfl-by-solaronix/
  • de Boer, B. J., Ruijg, G. J., Bakker, L. G., Kornaat, W., Zonneveldt, L., Kurvers, S. R., ... & Trcka, M. (2011). Energy saving potential of climate adaptive building shells-Inverse modelling of optimal thermal and visual behaviour. In Adaptive Architecture, an international conference, London.
  • Fox, M.A., & Yeh, B.P. (2000). Intelligent Kinetic Systems in Architecture. In P.Nixon, G. Lacey, & S. Dobson (Eds.) Managing Interactions in Smart Environments (pp.91-103). Springer, London. https://doi.org/10.1007/978-1-4471-0743-9_9
  • Gök, M., & Yiğit, S. (2017). Türkiye’deki Büyükşehirlerin Sürdürülebilirlik Kriterleri Açısından İncelenmesi. Yönetim Bilimleri Dergisi, 15(30), 253-273.
  • Heiselberg, P. (2012). IEA ECBCS Annex 44 Integrating Environmentally Responsive Elements in Buildings Project Summary Report. AECOM House.
  • Hensel, M., Sunguroglu D., & Menges, A. (2008). Material Performance. Architectural Design, 78(2), 34-41.
  • Jäger, N. (2017). Interacting with adaptive architecture. Interactions, 24(6), 62-65. https://doi.org/10.1145/3137113
  • Kamara, J., & Dejaco, M. (2017). Taking stock on building adaptability research and practice. International Journal of Building Pathology and Adaptation, 35(4), 282-283. https://doi.org/10.1108/ijbpa-09-2017-0045
  • Kızılörenli, E., & Maden, F. (2021, June). A Comparative Study on Responsive Façade Systems. In Proceedings of the International Conference of Contemporary Affairs in Architecture and Urbanism-ICCAUA (Vol. 4, No. 1, pp. 15-23).
  • Knaack, U., Luible, A., Overend, M., Aelenei, L., Perino, M., Wellershof, F., & Brzezicki, M. (2015). Adaptive facade network Europe. TU Delft Open.
  • Kon, N., (2011). Sebrae Headquarters. www.archdaily.com. https://www.archdaily.com/123791/sebraeheadquartersgruposp/57457696e58ece7952000007-sebrae-headquarters-gruposp-photo?next_project=no
  • Köppen, W., & Geiger, R. (Eds.). (1930). Handbuch der Klimatologie (Vol. 1). Berlin: Gebrüder Borntraeger.
  • Looman, R. (2017). Climate-Responsive Design: a framework for an energy concept design-decision support tool for architects using principles of climate-responsive. TU DELFT. https://doi.org/10.7480/abe.2017.1.1643
  • Loonen, R. C. G. M., Trcka, M., Cóstola, D., & Hensen, J. L. M. (2010). Performance simulation of climate adaptive building shells-Smart Energy Glass as a case study. In 8th International Conference on System Simulation in Buildings (SSB 2010), December 13-15, 2010, Liège, Belgium (pp. 1-19).
  • Loonen, R. C., Trčka, M., Cóstola, D., & Hensen, J. L. (2013). Climate adaptive building shells: State-of- the-art and future challenges. Renewable and sustainable energy reviews, 25, 483-493. https://doi.org/10.1016/j.rser.2013.04.016
  • Loonen, R. C., Rico-Martinez, J. M., Favoino, F., Brzezicki, M., Ménézo, C., La Ferla, G., & Aelenei, L. L. (2015). Design for façade adaptability: Towards a unified and systematic characterization. In 10th Conference on Advanced Building Skins, 3-4 November 2015 (pp. 1284-1294). Bern,
  • Switzerland. Economic Forum.
  • Mésároš, P., Spišáková, M., Mandičák, T., Čabala, J., & Oravec, M. (2021). Adaptive design of formworks for building renovation considering the sustainability of construction in BIM environment—case study. Sustainability, 13(2), 1-20. https://doi.org/10.3390/su13020799
  • Moloney, J. (2011). Designing Kinetics for Architectural Facades. Routledge. https://doi.org/10.4324/9780203814703
  • Negroponte, N. (1975). The Architecture Machine. Computer-Aided Design, 7(3), 190-195.
  • Peel, M. C., Finlayson, B. L., & McMahon, T. A. (2016). World Köppen Classification. Wikimedia
  • Commons.https://commons.wikimedia.org/wiki/File:World_Köppen_Classification_(with_authors).svg#file
  • Ramzy, N., & Fayed, H. (2011). Kinetic systems in architecture: New approach for environmental control systems and context-sensitive buildings. Sustainable Cities and Society, 1(3), 170-177. https://doi.org/10.1016/j.scs.2011.07.004
  • Schmidt III, R., & Austin, S. (2016). Adaptable architecture: Theory and practice. Routledge.
  • Shakouri, H., & Banihashemi, S. (2012). Developing an empirical predictive energy-rating model for windows by using Artificial Neural Network, International Journal of Green Energy, 16(13), 961-970. https://doi.org/10.1080/15435075. 2012.738451.
  • Voigt, M. P., Roth, D., & Kreimeyer, M. (2023). Systematic classification of adaptive façades– preparing a database. Proceedings of the Design Society, 3, 3295-3304. https://doi.org/10.1017/pds.2023.330
  • URL 1. (n.d.). Carabanchel Social Housing. Harward University. https://www.gsd.harvard.edu/project/carabanchel-social-housing/
  • URL 2. (2008). Carabanchel Social Housing. www.archdaily.com. https://www.archdaily.com/1580/caranbachel-housing-foreign-office-architects/500ff55928ba0d422200005c-caranbachel-housing-foreign-office-architects-image
  • URL 3. (2008). Façade Detail of Carabanchel Social Housing. www.archdaily.com. https://www.archdaily.com/1580/caranbachel-housing-foreign-office-architects/500ff54f28ba0d422200005a-caranbachel-housing-foreign-office-architects-image?next_project=no
Toplam 39 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Sürdürülebilir Mimari
Bölüm Tüm Makaleler
Yazarlar

Nazlı Nisa Güney 0000-0001-5567-5783

Ümit Arpacıoğlu 0000-0001-8858-7499

Proje Numarası yok
Yayımlanma Tarihi 17 Eylül 2024
Gönderilme Tarihi 29 Ocak 2024
Kabul Tarihi 12 Ağustos 2024
Yayımlandığı Sayı Yıl 2024 Cilt: 17 Sayı: 5

Kaynak Göster

APA Güney, N. N., & Arpacıoğlu, Ü. (2024). Examining Facade Adaptability: A Study of Adaptive Facade Classification Criteria. Kent Akademisi, 17(5), 1925-1938. https://doi.org/10.35674/kent.1428008

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