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Comparative life cycle energy and cost analysis of post-disaster temporary housings

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  • Atmaca, Adem
  • Atmaca, Nihat

Abstract

Temporary housings play an important role by providing people a habitable environment while the effects of a disaster are being fixed. In this paper, life cycle energy and cost analysis of two common types of post-disaster temporary housings constructed in Turkey has been studied. The aim of this study was to identify whether it is more convenient to use prefabricated (PH) or container housings (CH) in post-disaster reconstruction projects. Construction and operational energy requirements are calculated over 15years using a comprehensive approach. The energy and financial requirements of the housings have been evaluated by considering four different base areas. The life cycle investment, operation, maintenance, service and end of life costs have been investigated by using the net present value technique. Life cycle primary energy consumption values of the most widely used prefabricated (PH70) and container (CH20) housings are calculated to be 18.5 and 24.7GJ/m2, respectively. The results show that operational phase was dominant over the housings 15-year lifetime. The life cycle cost of PH70 and CH20 are calculated to be 919 and 1308$/m2, respectively. It is found that increasing the total base area of the housings is an important cost-effective energy reduction measure. The results expressed that prefabricated housings have 25.1 and 29.7% lower life cycle energy and cost requirements respectively.

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  • Atmaca, Adem & Atmaca, Nihat, 2016. "Comparative life cycle energy and cost analysis of post-disaster temporary housings," Applied Energy, Elsevier, vol. 171(C), pages 429-443.
  • Handle: RePEc:eee:appene:v:171:y:2016:i:c:p:429-443
    DOI: 10.1016/j.apenergy.2016.03.058
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    1. Eric Korpi & Timo Ala-Risku, 2008. "Life cycle costing: a review of published case studies," Managerial Auditing Journal, Emerald Group Publishing, vol. 23(3), pages 240-261, March.
    2. Graham Treloar, 1997. "Extracting Embodied Energy Paths from Input-Output Tables: Towards an Input-Output-based Hybrid Energy Analysis Method," Economic Systems Research, Taylor & Francis Journals, vol. 9(4), pages 375-391.
    3. Cui, Borui & Gao, Dian-ce & Wang, Shengwei & Xue, Xue, 2015. "Effectiveness and life-cycle cost-benefit analysis of active cold storages for building demand management for smart grid applications," Applied Energy, Elsevier, vol. 147(C), pages 523-535.
    4. Dodoo, Ambrose & Gustavsson, Leif, 2013. "Life cycle primary energy use and carbon footprint of wood-frame conventional and passive houses with biomass-based energy supply," Applied Energy, Elsevier, vol. 112(C), pages 834-842.
    5. Leckner, Mitchell & Zmeureanu, Radu, 2011. "Life cycle cost and energy analysis of a Net Zero Energy House with solar combisystem," Applied Energy, Elsevier, vol. 88(1), pages 232-241, January.
    6. Stephan, André & Stephan, Laurent, 2016. "Life cycle energy and cost analysis of embodied, operational and user-transport energy reduction measures for residential buildings," Applied Energy, Elsevier, vol. 161(C), pages 445-464.
    7. Chau, C.K. & Leung, T.M. & Ng, W.Y., 2015. "A review on Life Cycle Assessment, Life Cycle Energy Assessment and Life Cycle Carbon Emissions Assessment on buildings," Applied Energy, Elsevier, vol. 143(C), pages 395-413.
    8. Buyle, Matthias & Braet, Johan & Audenaert, Amaryllis, 2013. "Life cycle assessment in the construction sector: A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 26(C), pages 379-388.
    9. Rauf, Abdul & Crawford, Robert H., 2015. "Building service life and its effect on the life cycle embodied energy of buildings," Energy, Elsevier, vol. 79(C), pages 140-148.
    10. Stephan, André & Stephan, Laurent, 2014. "Reducing the total life cycle energy demand of recent residential buildings in Lebanon," Energy, Elsevier, vol. 74(C), pages 618-637.
    11. Stephan, André & Crawford, Robert H. & de Myttenaere, Kristel, 2013. "A comprehensive assessment of the life cycle energy demand of passive houses," Applied Energy, Elsevier, vol. 112(C), pages 23-34.
    12. Dodoo, Ambrose & Gustavsson, Leif & Sathre, Roger, 2012. "Effect of thermal mass on life cycle primary energy balances of a concrete- and a wood-frame building," Applied Energy, Elsevier, vol. 92(C), pages 462-472.
    13. Chen, T.Y & Burnett, J & Chau, C.K, 2001. "Analysis of embodied energy use in the residential building of Hong Kong," Energy, Elsevier, vol. 26(4), pages 323-340.
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    7. Gaetano Bertino & Tatjana Fischer & Gustav Puhr & Guenter Langergraber & Doris Österreicher, 2019. "Framework Conditions and Strategies for Pop-Up Environments in Urban Planning," Sustainability, MDPI, vol. 11(24), pages 1-30, December.

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