Life cycle greenhouse gas emissions and energy analysis of prefabricated reusable building modules

被引:324
|
作者
Aye, Lu [1 ]
Ngo, T. [1 ]
Crawford, R. H. [2 ]
Gammampila, R. [1 ]
Mendis, P. [1 ]
机构
[1] Univ Melbourne, Dept Infrastruct Engn, Melbourne, Vic 3010, Australia
[2] Univ Melbourne, Fac Architecture Bldg & Planning, Melbourne, Vic 3010, Australia
关键词
Life cycle energy; Embodied energy; Prefabrication; Waste minimisation; INPUT-OUTPUT-ANALYSIS; EMBODIED ENERGY; CONSTRUCTION;
D O I
10.1016/j.enbuild.2011.11.049
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Prefabrication is one strategy considered to provide improved environmental performance for building construction. However, there is an absence of detailed scientific research or case studies dealing with the potential environmental benefits of prefabrication, particularly the embodied energy savings resulting from waste reduction and the improved efficiency of material usage. This paper aims to quantify the embodied energy of modular prefabricated steel and timber multi-residential buildings in order to determine whether this form of construction provides improved environmental performance over conventional concrete construction methods. Furthermore this paper assesses the potential benefits of reusability of materials, reducing the space required for landfill and need for additional resource requirements. An eight-storey, 3943 m(2) multi-residential building was investigated. It was found that a steel-structured prefabricated system resulted in reduced material consumption of up to 78% by mass compared to conventional concrete construction. However, the prefabricated steel building resulted in a significant increase (similar to 50%) in embodied energy compared to the concrete building. It was shown that there was significant potential for the reuse of materials in the prefabricated steel building, representing up to an 81% saving in embodied energy and 51% materials saving by mass. This form of construction has the potential to contribute significantly towards improved environmental sustainability in the construction industry. Crown Copyright (C) 2011 Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:159 / 168
页数:10
相关论文
共 50 条
  • [31] Improvements in Life Cycle Energy Efficiency and Greenhouse Gas Emissions of Corn-Ethanol
    Liska, Adam J.
    Yang, Haishun S.
    Bremer, Virgil R.
    Klopfenstein, Terry J.
    Walters, Daniel T.
    Erickson, Galen E.
    Cassman, Kenneth G.
    JOURNAL OF INDUSTRIAL ECOLOGY, 2009, 13 (01) : 58 - 74
  • [32] The greenhouse gas emissions of nuclear energy - Life cycle assessment of a European pressurised reactor
    Pomponi, Francesco
    Hart, Jim
    APPLIED ENERGY, 2021, 290
  • [33] The effect of lightweighting on greenhouse gas emissions and life cycle energy for automotive composite parts
    Akhshik, Masoud
    Panthapulakkal, Suhara
    Tjong, Jimi
    Sain, Mohini
    CLEAN TECHNOLOGIES AND ENVIRONMENTAL POLICY, 2019, 21 (03) : 625 - 636
  • [34] The effect of lightweighting on greenhouse gas emissions and life cycle energy for automotive composite parts
    Masoud Akhshik
    Suhara Panthapulakkal
    Jimi Tjong
    Mohini Sain
    Clean Technologies and Environmental Policy, 2019, 21 : 625 - 636
  • [35] Energy use and life cycle greenhouse gas emissions of drones for commercial package delivery
    Stolaroff, Joshuah K.
    Samaras, Constantine
    O'Neill, Emma R.
    Lubers, Alia
    Mitchell, Alexandra S.
    Ceperley, Daniel
    NATURE COMMUNICATIONS, 2018, 9
  • [36] Life-Cycle Energy Use and Greenhouse Gas Emissions of a Building-Scale Wastewater Treatment and Nonpotable Reuse System
    Hendrickson, Thomas P.
    Nguyen, Mi T.
    Sukardi, Marsha
    Miot, Alexandre
    Horvath, Arpad
    Nelson, Kara L.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2015, 49 (17) : 10303 - 10311
  • [37] Implications of passive energy efficiency measures on life cycle greenhouse gas emissions of high-rise residential building envelopes
    Rivera, M. Lizeth
    MacLean, Heather L.
    McCabe, Brenda
    ENERGY AND BUILDINGS, 2021, 249
  • [38] A probabilistic fleet analysis for energy consumption, life cycle cost and greenhouse gas emissions modelling of bus technologies
    Harris, Andrew
    Soban, Danielle
    Smyth, Beatrice M.
    Best, Robert
    APPLIED ENERGY, 2020, 261
  • [39] Comparing high and low residential density: Life-cycle analysis of energy use and greenhouse gas emissions
    Norman, J
    MacLean, HL
    Kennedy, CA
    JOURNAL OF URBAN PLANNING AND DEVELOPMENT, 2006, 132 (01) : 10 - 21
  • [40] Development and application of an electric vehicles life-cycle energy consumption and greenhouse gas emissions analysis model
    Peng, Tianduo
    Ou, Xunmin
    Yan, Xiaoyu
    CHEMICAL ENGINEERING RESEARCH & DESIGN, 2018, 131 : 699 - 708