Analysis of the embodied energy of construction materials in the life cycle assessment of Hellenic residential buildings

被引:25
|
作者
Dascalaki, Elena G. [1 ]
Argiropoulou, Poulia [1 ]
Balaras, Constantinos A. [1 ]
Droutsa, Kalliopi G. [1 ]
Kontoyiannidis, Simon [1 ]
机构
[1] Natl Observ Athens, Inst Environm Res & Sustainable Dev, Grp Energy Conservat, Athens, Greece
关键词
Embodied energy; Building life cycle; Energy use; Residential buildings; Embodied energy intensity; Energy conservation measures; Recovery period; ENVIRONMENTAL ASSESSMENT; PERFORMANCE; STOCK; EFFICIENCY; VS;
D O I
10.1016/j.enbuild.2020.110651
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
As the operational energy use in new constructions is moving towards nearly zero energy buildings, the embodied energy of buildings is gaining more importance. This work elaborates the importance of embodied energy in Hellenic residential buildings by comparing the primary energy consumption during their life cycle. Field surveys were used to collect relevant data from local manufactures and determine the embodied energy coefficients of popular construction materials. The derived embodied energy intensities (EEL) and the calculated primary energy use intensities (EUL) are then used for benchmarking the buildings' energy and environmental life cycle performance. The EEL value ranged from 3.2 to 7.1 GJ/ m(2), compared with annual primary EUL of 0.3 to 3.9 GJ/m(2). The initial and recurrent embodied energy of building construction materials over the lifetime of a building can reach up to similar to 30%. The analysis quantified the time it takes for the operational energy savings resulting from energy conservation measures that are implemented in existing dwellings to recover the embodied energy impact of the new materials or products that are used. For individual measures, the average recovery time ranged from 1 to 6 years, and up to 10 years from more conservative estimates. For a combined scenario it approaches similar to 2 years or similar to 3.5 years, respectively. (C) 2020 Published by Elsevier B.V.
引用
下载
收藏
页数:12
相关论文
共 50 条
  • [31] Prediction of consumed embodied energy over the life cycle of buildings
    Zimmermann, Josef
    Reiser, Maximilian
    MAUERWERK, 2021, 25 (03) : 120 - 130
  • [32] Assessment of the life cycle of masonry walls in residential buildings
    Korentz, Jacek
    Nowogonska, Beata
    3RD SCIENTIFIC CONFERENCE ENVIRONMENTAL CHALLENGES IN CIVIL ENGINEERING (ECCE 2018), 2018, 174
  • [33] Characterising Embodied Energy in Construction Activities Using Energy Inventory Life Cycle Assessment Method
    Haddad, Assed N. N.
    Sedrez, Michele M. M.
    Najjar, Mohammad K. K.
    Hammad, Ahmed W. A.
    Soares, Carlos A. P.
    BUILDINGS, 2023, 13 (01)
  • [34] Life cycle embodied energy and carbon dioxide emissions in buildings
    Atkinson, Carol
    Hobbs, Sue
    West, John
    Edwards, Suzy
    Industry and Environment, 1996, 19 (02): : 29 - 31
  • [35] Empirical assessment of calculated and actual heating energy use in Hellenic residential buildings
    Balaras, Constantinos A.
    Dascalaki, Elena G.
    Droutsa, Kalliopi G.
    Kontoyiannidis, Simon
    APPLIED ENERGY, 2016, 164 : 115 - 132
  • [36] Life-cycle energy of residential buildings in China
    Chang, Yuan
    Ries, Robert J.
    Wang, Yaowu
    ENERGY POLICY, 2013, 62 : 656 - 664
  • [37] Alternative Building Materials Analysis for Different Residential Buildings Considering Embodied Energy and Material Cost
    Sharma, Aniket
    Marwaha, Bhanu M.
    INTERNATIONAL JOURNAL OF ECOLOGY & DEVELOPMENT, 2016, 31 (02) : 10 - 34
  • [38] Embodied energy and carbon analysis of urban residential buildings in Malawi
    Mpakati-Gama, Effiness C.
    Brown, Andrew
    Sloan, Brian
    INTERNATIONAL JOURNAL OF CONSTRUCTION MANAGEMENT, 2016, 16 (01) : 1 - 12
  • [39] Life cycle energy analysis of residential wooden buildings versus concrete and steel buildings: A review
    Schenk, Daniela
    Amiri, Ali
    FRONTIERS IN BUILT ENVIRONMENT, 2022, 8
  • [40] Life cycle assessment of Irish residential buildings and typical building envelope analysis
    Armstrong, A.
    Goggins, J.
    STRUCTURES AND ARCHITECTURE: CONCEPTS: APPLICATIONS AND CHALLENGES, 2013, : 600 - 607