Advancing the Design of Resilient and Sustainable Buildings: An Integrated Life-Cycle Analysis

被引:21
|
作者
Angeles, Karen [1 ]
Patsialis, Dimitrios [1 ]
Taflanidis, Alexandros A. [1 ]
Kijewski-Correa, Tracy L. [2 ]
Buccellato, Aimee [3 ]
Vardeman, Charles, II [4 ]
机构
[1] Univ Notre Dame, Dept Civil & Environm Engn & Earth Sci, 156 Fitzpatrick Hall, Notre Dame, IN 46556 USA
[2] Univ Notre Dame, Dept Civil & Environm Engn & Earth Sci, Keough Sch Global Affairs, 156 Fitzpatrick Hall, Notre Dame, IN 46556 USA
[3] Univ Notre Dame, Sch Architecture, 114 Walsh Family Hall Architecture, Notre Dame, IN 46556 USA
[4] Univ Notre Dame, Ctr Res Comp, 911 Flanner, Notre Dame, IN 46556 USA
基金
美国国家科学基金会;
关键词
Life-cycle assessment; Sustainability; Resilience; Environmental impact; Embodied energy; Operating energy; Repair cost; Wind; Earthquakes; Performance-based design; EMBODIED CARBON; RISK-ASSESSMENT; COST ASSESSMENT; PERFORMANCE; FRAMEWORK; ENERGY; LCA; IMPACTS; HAZARD; DAMAGE;
D O I
10.1061/(ASCE)ST.1943-541X.0002910
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
A holistic evaluation of a building's environmental impact must include a thorough accounting of both its operating and embodied energies, inclusive of the influence of hazard-induced damage and repairs. Unfortunately, these considerations are notoriously absent in today's practice owing to a traditionally segmented approach to the design process that has perpetuated interoperability challenges between existing commercial tools. In response to this and other limitations of existing approaches, this paper offers an integrated life-cycle assessment (iLCA) that (1) considers the effects of site-specific climate and exposure to wind and seismic hazards on a building's embodied and operating energy, (2) adopts an assembly-based approach to reveal the specific components influencing performance outcomes, (3) accommodates both risk-neutral and risk-adverse perspectives, and (4) addresses interoperability challenges that limit access to the data stored within commercial building information models. The resulting iLCA is partitioned into a sustainability workflow, with modules dedicated to embodied and operating energy, and a resilience workflow, sequencing modules for hazard characterization, structural response, damage, and repair/loss. A custom parser leverages semantic technologies to efficiently extract geometry and material information from the underlying data structures of Revit building information models; this parser ultimately supplies the required building data to each module. A unifying probabilistic framework is then adopted to quantify life-cycle performance, in terms of repair costs and total (embodied and operating) energy, with emphasis placed on expanding the statistical descriptions of performance to support both risk-neutral and risk-averse decision-making. The iLCA is applied to a case study office building at two sites to demonstrate the effects of climate and wind and seismic hazards on the performance of specific components over different service lives, inclusive of potential performance variability due to hazard exposure. The framework is further leveraged to examine how different sources of uncertainty, or assumptions surrounding the quantification of this uncertainty, impact life-cycle performance estimates. (C) 2020 American Society of Civil Engineers.
引用
收藏
页数:19
相关论文
共 50 条
  • [1] Advancing Resilient and Sustainable Buildings through a New Normative Workflow for Integrated Life-Cycle Assessments
    Angeles, Karen
    Patsialis, Dimitrios
    Kijewski-Correa, Tracy
    Taflanidis, Alexandros
    Vardeman, Charles F., II
    Buccellato, Aimee
    [J]. INTERNATIONAL CONFERENCE ON SUSTAINABLE INFRASTRUCTURE 2019: LEADING RESILIENT COMMUNITIES THROUGH THE 21ST CENTURY, 2019, : 652 - 659
  • [2] MODELLING THE LIFE-CYCLE OF SUSTAINABLE, LIVING BUILDINGS
    van Nederveen, Sander
    Gielingh, Wim
    [J]. JOURNAL OF INFORMATION TECHNOLOGY IN CONSTRUCTION, 2009, 14 : 674 - 691
  • [3] Integrated computational life-cycle assessment of buildings
    Ries, R
    Mahdavi, A
    [J]. JOURNAL OF COMPUTING IN CIVIL ENGINEERING, 2001, 15 (01) : 59 - 66
  • [4] Life-cycle design for sustainable architecture
    Thiebat, Francesca
    [J]. TECHNE-JOURNAL OF TECHNOLOGY FOR ARCHITECTURE AND ENVIRONMENT, 2013, 5 : 177 - 183
  • [5] Life-Cycle Assessment of Sustainable Foundation Systems of Buildings
    Kraus, Michal
    Senitkova, Ingrid Juhasova
    [J]. 4TH WORLD MULTIDISCIPLINARY CIVIL ENGINEERING-ARCHITECTURE-URBAN PLANNING SYMPOSIUM - WMCAUS, 2019, 603
  • [6] Integrated life-cycle analysis
    Kohler, N
    Lützkendorf, T
    [J]. BUILDING RESEARCH AND INFORMATION, 2002, 30 (05): : 338 - 348
  • [7] Sensitivity analysis of design variables in life-cycle environmental impacts of buildings
    Zhou, Yijun
    Tam, Vivian WY.
    Le, Khoa N.
    [J]. JOURNAL OF BUILDING ENGINEERING, 2023, 65
  • [8] Sustainable product design: A life-cycle approach
    Zhang, Xiang
    Zhang, Lei
    Fung, Ka Yip
    Bakshi, Bhavik R.
    Ng, Ka Ming
    [J]. CHEMICAL ENGINEERING SCIENCE, 2020, 217
  • [9] Implications of sustainable features on life-cycle costs of green buildings
    Weerasinghe, Achini Shanika
    Ramachandra, Thanuja
    [J]. SUSTAINABLE DEVELOPMENT, 2020, 28 (05) : 1136 - 1147
  • [10] Integrated life-cycle design of building enclosures
    Mora, Rodrigo
    Bitsuamlak, Girma
    Horvat, Miljana
    [J]. BUILDING AND ENVIRONMENT, 2011, 46 (07) : 1469 - 1479