Abstract
(1) Background: The embodied energy of building materials is a significant contributor to climate change, in tandem with the energy use intensity (EUI). Yet, studies on the material impacts of European retail buildings, namely with relation to EUI, are missing. Hence, this study set out to: (i) evaluate the embodied energy and carbon emissions for a European retail building; (ii) quantify the material flow in terms of mass; (iii) compare the embodied aspects to the operational EUI and carbon use intensity (CUI); (iv) assess building materials with higher impacts; and (v) investigate strategies to mitigate materials’ impacts. (2) Methods: A Portuguese retail building was selected as a case study. A simplified LCA method was followed (cradle-to-gate), analysing the shell building materials in terms of primary energy demand and global warming potential. (3) Results: the embodied energy represented 32% of total lifecycle energy while the embodied carbon represented 94%. EUI was 1×kWh/m2/y while CUI was 21 kg CO2eq/m2/y. The embodied energy was 4248 kWh/m2, and the embodied carbon was 1689 kg CO2eq/m2. Cement mortar, steel, concrete, and extruded polystyrene were the most intensive materials. (4) Conclusions: The embodied impacts of the analysed store could decrease by choosing stone wool sandwich panels for the facades instead of extruded polystyrene panels and roof systems with metal sheet coverings instead of bitumen materials.
Funder
FCT—Fundação para a Ciência e Tecnologia
CERIS
Instituto Superior Técnico
Subject
Energy (miscellaneous),Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electrical and Electronic Engineering,Control and Optimization,Engineering (miscellaneous),Building and Construction
Reference53 articles.
1. Gervasio, H., and Dimova, S. (2018). Model for Life Cycle Assessment (LCA) of Buildings, EUR 29123 EN, Publications Office of the European Union, 2018, JRC110082, Joint Research Center.
2. Yin, S., Dong, T., Li, B., and Gao, S. (2022). Developing a Conceptual Partner Selection Framework: Digital Green Innovation Management of Prefabricated Construction Enterprises for Sustainable Urban Development. Buildings, 12.
3. Embodied Carbon Mitigation and Reduction in the Built Environment—What Does the Evidence Say?;Pomponi;J. Environ. Manag.,2016
4. A Conceptual Framework for Understanding the Contribution of Building Materials in the Achievement of Sustainable Development Goals (SDGs);Omer;Sustain. Cities Soc.,2020
5. Life Cycle Energy Analysis of Buildings: An Overview;Ramesh;ENERGY Build.,2010
Cited by
3 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献