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Afet Sonrası Geçici Barınma Kalite Kriterlerinin Sürdürülebilirlik Bağlamında Değerlendirilmesi

Yıl 2025, Cilt: 9 Sayı: 2, 266 - 274, 20.09.2025
https://doi.org/10.54864/planarch.1672088

Öz

Afetler, türsel farklılıklar gösterse de küresel ölçekte benzer sosyo-ekonomik ve fiziksel zorluklar yaratmaktadır. Bu zorlukların başında, afetzedelerin temel ihtiyaçlarının karşılanması sürecinde en kritik konulardan biri olan barınma gelmektedir. Afet sonrası geçici barınma çözümleri; afetin türü, etkilenen nüfusun demografik yapısı, kullanıcıların özel ihtiyaçları, mevcut kaynaklar ve karar verici aktörlerin öncelikleri doğrultusunda çeşitlilik göstermektedir. Bu çeşitlilik, geçici barınma birimlerinin kalitesinin değerlendirilmesine ilişkin standart bir veri altyapısının oluşturulmasını zorlaştırmaktadır. Paydaşların karar alma süreçlerinde başvurabilecekleri güvenilir ve karşılaştırılabilir veri havuzlarının yetersizliği, afet sonrası barınma planlamalarında sürdürülebilirlik temelli bir yaklaşımın benimsenmesini sınırlamakta ve uygulamaya geçiş süreçlerinde çeşitli problemler ortaya çıkmaktadır. Bu çalışma, söz konusu sorunsalı temel alarak, geçici barınma birimlerinin kalite kriterlerini sürdürülebilirlik ekseninde yeniden değerlendirmeyi amaçlamaktadır. Çalışma kapsamında, son on yıl içerisinde yayımlanmış afet sonrası geçici barınmaya ilişkin akademik yayınlar incelenmiş ve elde edilen bulgular meta-analiz yöntemiyle değerlendirilmiştir. Analiz, kalite kriterlerini çevresel, sosyal, ekonomik ve teknik sürdürülebilirlik boyutları altında gruplandırarak kapsamlı bir kriter havuzu oluşturmuştur. Ayrıca, bu kriterler arasındaki ilişkiler değerlendirilmiş ve kalite analizine temel oluşturabilecek yapısal bir çerçeve önerilmiştir. Sonuç bölümünde, gelecekte yürütülecek çalışmalarda kullanılmak üzere geçici barınma birimlerinin kalite değerlendirmesine yönelik sayısallaştırma ve matematiksel model önerilerine yer verilmiştir. Çalışma, afet sonrası barınma çözümlerinin kalite analizine yönelik sürdürülebilirlik ekseninde öneriler sunmakta olup, bu alandaki araştırmalar için başlangıç niteliğinde bir rehber olarak değerlendirilmektedir.

Kaynakça

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  • Albadra, D., Coley D., & Hart J. (2018) Toward healthy housing for the displaced, The Journal of Architecture, 23(1), 115-136, https://doi.org/10.1080/13602365.2018.1424227
  • Asali, M. W. A., Wagemann, E., & Ramage, M. H. (2019). Living on the move, dwelling between temporality and permanence in Syria. Journal of Housing and the Built Environment, 34, 829-843. https://doi.org/10.1007/s10901-019-09685-9
  • Avlar, E., Limoncu, S., & Tızman, D. (2023). Post-earthquake temporary housing unit: CLT E-BOX. Journal of the Faculty of Engineering and Architecture of Gazi University, 38(1), 471-482. https://doi.org/10.17341/gazimmfd.1027894
  • Ayanoğlu, G., & Erbaş, İ. (2023). An experimentation on the design of post-disaster shelter units using kinetic architectural element. Journal of Disaster and Risk, 6(3), 776-796. https://doi.org/10.35341/afet.1195209
  • Ayvaz, E., & Arpacıoğlu, Ü. (2024). Afet Sonrası Geçici Barınma Alanları İçin Konteyner Model Önerilerinin Geliştirilmesi. Mimarlık ve Yaşam, 9(1), 169-193. https://doi.org/10.26835/my.1396352
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  • Can, İ., & Saka, A. E. (2022). Deprem sonrası geçici barınma birimleri için alternatif bir çözüm önerisi: WikiGEB. Online Journal of Art and Design, 10(2), 115-125.
  • Dash, S. P., Pati, D. J., Mohamed, Z. S., & Ramesh, S. (2022). To study the material feasibility and propose design prototype for temporary housing structures for emergency relief. Materials Today: Proceedings, 60, 123-131. https://doi.org/10.1016/j.matpr.2021.12.274
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  • D'Orazio, M., & Maracchini, G. (2019). An experimental investigation on the indoor hygrothermal environment of a reinforced-EPS based temporary housing solution. Energy and Buildings, 204, 109500. https://doi.org/10.1016/j.enbuild.2019.109500
  • Faragallah, R. N. (2021). Fundamentals of temporary dwelling solutions: A proposed sustainable model for design and construction. Ain Shams Engineering Journal, 12(3), 3305-3316. https://doi.org/10.1016/j.asej.2020.11.016
  • Felix, D., Branco, J.M. & Feio, A. (2013). Guidelines to improve sustainability and cultural integration of temporary housing units, i-Rec conference 2013 Sustainable Post-Disaster Reconstruction: From Recovery to Risk Reduction, Centro Stefano Franscini, Monte Verità Ascona, Switzerland, 26-30 May 2013. [CrossRef]
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Evaluation of Post-Disaster Temporary Shelter Quality Criteria in the Context of Sustainability

Yıl 2025, Cilt: 9 Sayı: 2, 266 - 274, 20.09.2025
https://doi.org/10.54864/planarch.1672088

Öz

Disasters, regardless of their type, create similar socio-economic and physical challenges on a global scale. Among these, the provision of shelter stands out as one of the most critical components in meeting the basic needs of affected populations. Post-disaster temporary shelter solutions vary depending on the type of disaster, the demographic structure of the affected population, specific user needs, available resources, and the priorities of decision-makers. This diversity complicates the development of a standardized framework for assessing the quality of temporary shelter units. The absence of reliable and comparable data sets that stakeholders can refer to during decision-making processes limits the adoption of sustainability-based approaches in shelter planning and creates various challenges during implementation. This study aims to reassess the quality criteria of temporary shelter units from a sustainability perspective. For this purpose, academic publications on post-disaster temporary sheltering published over the last decade were systematically reviewed, and the findings were analyzed using a meta-analysis method. The identified quality criteria were categorized under four dimensions of sustainability: environmental, social, economic, and technical. Based on these categories, a comprehensive pool of criteria was developed, and the interrelations among them were examined to propose a structural framework for quality assessment. The study concludes with recommendations for quantification methods and mathematical models that can guide future evaluations of temporary shelter units. By providing sustainability-oriented insights into the quality analysis of post-disaster shelter solutions, this research serves as a preliminary guide for future studies in the field.

Kaynakça

  • Abrahams, D. (2014). The barriers to environmental sustainability in post‐disaster settings: a case study of transitional shelter implementation in Haiti. Disasters, 38(s1), S25-S49. https://doi.org/10.1111/disa.12054
  • Ahmed, I., & Charlesworth, E. R. (2015). An evaluation framework for assessing resilience of post-disaster housing. International Journal of Disaster Resilience in the Built Environment, 6(3), 300-312. http://dx.doi.org/10.1108/IJDRBE-11-2013-0042
  • Albadra, D., Coley D., & Hart J. (2018) Toward healthy housing for the displaced, The Journal of Architecture, 23(1), 115-136, https://doi.org/10.1080/13602365.2018.1424227
  • Asali, M. W. A., Wagemann, E., & Ramage, M. H. (2019). Living on the move, dwelling between temporality and permanence in Syria. Journal of Housing and the Built Environment, 34, 829-843. https://doi.org/10.1007/s10901-019-09685-9
  • Avlar, E., Limoncu, S., & Tızman, D. (2023). Post-earthquake temporary housing unit: CLT E-BOX. Journal of the Faculty of Engineering and Architecture of Gazi University, 38(1), 471-482. https://doi.org/10.17341/gazimmfd.1027894
  • Ayanoğlu, G., & Erbaş, İ. (2023). An experimentation on the design of post-disaster shelter units using kinetic architectural element. Journal of Disaster and Risk, 6(3), 776-796. https://doi.org/10.35341/afet.1195209
  • Ayvaz, E., & Arpacıoğlu, Ü. (2024). Afet Sonrası Geçici Barınma Alanları İçin Konteyner Model Önerilerinin Geliştirilmesi. Mimarlık ve Yaşam, 9(1), 169-193. https://doi.org/10.26835/my.1396352
  • Barbosa, L. L. (2014). Capacity building through design innovation with vegetable fibres for temporary shelters. Procedia Economics and Finance, 18, 230-237. https://doi.org/10.1016/S2212-5671(14)00935-6
  • Can, İ., & Saka, A. E. (2022). Deprem sonrası geçici barınma birimleri için alternatif bir çözüm önerisi: WikiGEB. Online Journal of Art and Design, 10(2), 115-125.
  • Dash, S. P., Pati, D. J., Mohamed, Z. S., & Ramesh, S. (2022). To study the material feasibility and propose design prototype for temporary housing structures for emergency relief. Materials Today: Proceedings, 60, 123-131. https://doi.org/10.1016/j.matpr.2021.12.274
  • DeCoster, J. (2009). Meta-Analysis Notes, Institute for Social Science Research University of Alabama. [CrossRef]
  • D'Orazio, M., & Maracchini, G. (2019). An experimental investigation on the indoor hygrothermal environment of a reinforced-EPS based temporary housing solution. Energy and Buildings, 204, 109500. https://doi.org/10.1016/j.enbuild.2019.109500
  • Faragallah, R. N. (2021). Fundamentals of temporary dwelling solutions: A proposed sustainable model for design and construction. Ain Shams Engineering Journal, 12(3), 3305-3316. https://doi.org/10.1016/j.asej.2020.11.016
  • Felix, D., Branco, J.M. & Feio, A. (2013). Guidelines to improve sustainability and cultural integration of temporary housing units, i-Rec conference 2013 Sustainable Post-Disaster Reconstruction: From Recovery to Risk Reduction, Centro Stefano Franscini, Monte Verità Ascona, Switzerland, 26-30 May 2013. [CrossRef]
  • Félix, D., Monteiro, D., Branco, J. M., Bologna, R., & Feio, A. (2015). The role of temporary accommodation buildings for post-disaster housing reconstruction. Journal of Housing and the Built Environment, 30, 683-699. https://doi.org/10.1007/s10901-014-9431-4
  • FEMA. (2020). Planning Considerations: Disaster Housing. [CrossRef]
  • Field, A. P., & Gillett, R. (2010). How to do a meta‐analysis. British Journal of Mathematical and Statistical Psychology, 63(3), 665-694.
  • Fritz Institute (2006). Evidence of Impact: Challenges and New Directions Proceedings of the 2006 Impact Conference, May 19‐20 2006, Sebastopol, California: Fritz Institute http://www.fritzinstitute.org/prgHI‐Conference2006.html
  • Glass, G. V. (1976). Primary, secondary, and meta-analysis of research. Educational Researcher, 5(10), 3-8. https://doi.org/10.3102/0013189X005010003
  • Guarnacci, U. (2012). Governance for sustainable reconstruction after disasters: Lessons from Nias, Indonesia. Environmental Development, 2, 73-85. https://doi.org/10.1016/j.envdev.2012.03.010
  • Hallam, A. (1998). Evaluating humanitarian assistance programmes in complex emergencies. In Evaluating humanitarian assistance programmes in complex emergencies. Good Practice Review, 7, 102. [CrossRef]
  • Halliday, S. (2008). Sustainable construction. Oxford, UK: Butterworth-Heinemann.
  • Harrison, F. (2011). Getting started with meta‐analysis. Methods in Ecology and Evolution, 2(1), 1-10. https://doi.org/10.1111/j.2041-210X.2010.00056.x
  • Hosseini, S. A., de la Fuente, A., & Pons, O. (2016). Multi-criteria decision-making method for assessing the sustainability of post-disaster temporary housing units technologies: A case study in Bam, 2003. Sustainable Cities and Society, 20, 38-51. https://doi.org/10.1016/j.scs.2015.09.012
  • Hosseini, S. A., Ghalambordezfooly, R., & de la Fuente, A. (2022). Sustainability Model to Select Optimal Site Location for Temporary Housing Units: Combining GIS and the MIVES–Knapsack Model. Sustainability, 14(8), 4453. https://doi.org/10.3390/su14084453
  • Johnson, C. (2007). Strategic planning for post‐disaster temporary housing. Disasters, 31(4), 435-458. https://doi.org/10.1111/j.0361-3666.2007.01018.x
  • Johnson, C., Lizarralde, G., & Davidson, C. H. (2006). A systems view of temporary housing projects in post‐disaster reconstruction. Construction Management and Economics, 24(4), 367-378. https://doi.org/10.1080/01446190600567977
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Toplam 71 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Sürdürülebilir Mimari
Bölüm Araştırma Makaleleri
Yazarlar

Melike Kalkan 0000-0003-2436-4426

Erken Görünüm Tarihi 16 Eylül 2025
Yayımlanma Tarihi 20 Eylül 2025
Gönderilme Tarihi 8 Nisan 2025
Kabul Tarihi 2 Haziran 2025
Yayımlandığı Sayı Yıl 2025 Cilt: 9 Sayı: 2

Kaynak Göster

APA Kalkan, M. (2025). Evaluation of Post-Disaster Temporary Shelter Quality Criteria in the Context of Sustainability. PLANARCH - Design and Planning Research, 9(2), 266-274. https://doi.org/10.54864/planarch.1672088

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