Whole building life cycle assessment at the design stage: a BIM-based framework using environmental product declaration

被引:23
作者
Feng, Haibo [1 ]
Kassem, Mohamad [1 ]
Greenwood, David [1 ]
Doukari, Omar [1 ]
机构
[1] Northumbria Univ, Mech & Construct Engn, Newcastle Upon Tyne, Tyne & Wear, England
关键词
Environmental product declaration; Building information modeling; Whole building life cycle assessment (WBLCA); Building design optimization; ASSESSMENT LCA; ENERGY; CONSTRUCTION; INDUSTRY; IMPACTS; SUSTAINABILITY;
D O I
10.1108/IJBPA-06-2021-0091
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Purpose Whole building life cycle assessment (WBLCA) is a key methodology to reduce the environmental impacts in the building sector. Research studies usually face challenges in presenting comprehensive LCA results due to the complexity of assessments at the building level. There is a dearth of methods for the systematic evaluation and optimization of the WBLCA performance at the design stage. The study aims to develop a design optimization framework based on the proposed WBLCA method to evaluate and improve the environmental performance at the building level. Design/methodology/approach The WBLCA development method is proposed with detailed processes based on the EN 15978 standard. The environmental product declaration (EPD) methods were adopted to ensure the WBLCA is comprehensive and reliable. Building information modeling (BIM) was used to ensure the building materials and assembly contributions are accurate and provide dynamic material updates for the design optimization framework. Furthermore, the interactive BIM-LCA calculation processes were demonstrated for measuring the environmental impacts of design upgrades. The TOPSIS-based LCA results normalization was selected to conduct the comparisons of various building design upgrades. Findings The case study conducted for a residential building showed that the material embodied impacts and the operational energy use impacts are the two critical factors that contribute 60-90% of the total environmental impacts and resource uses. Concrete and wood are the main material types accounting for an average of 65% of the material embodied impacts. The air and water heating for the house are the main energy factors, as these account for over 80% of the operational energy use. Based on the original WBLCA results, two scenarios were established to improve building performance through the design optimization framework. Originality/value The LCA results show that the two upgraded building designs create an average of 5% reduction compared with the original building design and improving the thermal performance of the house with more insulation materials does not always reduce the WBLCA results. The proposed WBLCA method can be used to compare the building-level environmental performances with the similar building types. The proposed framework can be used to support building designers to effectively improve the WBLCA performance.
引用
收藏
页码:109 / 142
页数:34
相关论文
共 50 条
[31]   Retrofit of Building Facade Using Precast Sandwich Panel: An Integrated Thermal and Environmental Assessment on BIM-Based LCA [J].
Tushar, Quddus ;
Zhang, Guomin ;
Bhuiyan, Muhammed A. A. ;
Navaratnam, Satheeskumar ;
Giustozzi, Filippo ;
Hou, Lei .
BUILDINGS, 2022, 12 (12)
[32]   Analysis of risk in building life cycle coupling BIM-based energy simulation and semantic modeling [J].
Pruvost, Herve ;
Scherer, Raimar J. .
CREATIVE CONSTRUCTION CONFERENCE 2017, CCC 2017, 2017, 196 :1106-1113
[33]   BIM-Based Assessment of the Environmental Effects of Various End-of-Life Scenarios for Buildings [J].
Wang, Shuqiang ;
Wu, Qingqing ;
Yu, Jinping .
SUSTAINABILITY, 2024, 16 (07)
[34]   Challenges in life cycle assessment implementation for construction environmental product declaration development: A mixed approach and global perspective [J].
Olanrewaju, Oludolapo Ibrahim ;
Enegbuma, Wallace Imoudu ;
Donn, Michael .
SUSTAINABLE PRODUCTION AND CONSUMPTION, 2024, 49 :502-528
[35]   Research on life cycle environmental impact assessment and decision analysis model of building materials based on BIM [J].
Zhang, Jie ;
Liu, Tingting ;
Hu, Xinmin .
2ND INTERNATIONAL CONFERENCE ON APPLIED MATHEMATICS, MODELLING, AND INTELLIGENT COMPUTING (CAMMIC 2022), 2022, 12259
[36]   Building sustainability assessment model based on life cycle cost analysis and BIM technology [J].
Y. Lei ;
L. Dong .
International Journal of Environmental Science and Technology, 2024, 21 :4089-4100
[37]   Building sustainability assessment model based on life cycle cost analysis and BIM technology [J].
Lei, Y. ;
Dong, L. .
INTERNATIONAL JOURNAL OF ENVIRONMENTAL SCIENCE AND TECHNOLOGY, 2024, 21 (04) :4089-4100
[38]   A review of comprehensiveness, user-friendliness, and contribution for sustainable design of whole building environmental life cycle assessment software tools [J].
Karunaratne, Shiromi ;
Dharmarathna, Dilshi .
BUILDING AND ENVIRONMENT, 2022, 212
[39]   Application of life-cycle assessment to early stage building design for reduced embodied environmental impacts [J].
Basbagill, J. ;
Flager, F. ;
Lepech, M. ;
Fischer, M. .
BUILDING AND ENVIRONMENT, 2013, 60 :81-92
[40]   BIM-Based Life Cycle Assessment to Quantify Carbon Dioxide Emissions During Road Construction [J].
Lou, Baowen ;
Barbieri, Diego Maria ;
Bohne, Rolf Andre .
PROCEEDINGS OF THE 5TH INTERNATIONAL CONFERENCE ON TRANSPORTATION GEOTECHNICS, VOL 7, ICTG 2024, 2025, 408 :403-412