Comparison of generic and product-specific Life Cycle Assessment databases: application to construction materials used in building LCA studies

被引:74
|
作者
Lasvaux, Sebastien [1 ,2 ]
Habert, Guillaume [3 ]
Peuportier, Bruno [4 ]
Chevalier, Jacques [1 ]
机构
[1] Univ Paris East, CSTB, Environm & Life Cycle Engn Div, 24 Rue Joseph Fourier, F-38400 St Martin Dheres, France
[2] Univ Appl Sci Western Switzerland HES SO, Lab Solar Energet & Bldg Phys LESBAT, CH-1401 Yverdon, Switzerland
[3] ETH, Inst Construct & Infrastruct Management, Chair Sustainable Construct, CH-8093 Zurich, Switzerland
[4] MINES ParisTech, Ctr Energy & Proc, F-91120 Palaiseau, France
来源
关键词
Building assessment; Comparison; Construction products; EPD; Generic data; LCA;
D O I
10.1007/s11367-015-0938-z
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The Life Cycle Assessment (LCA) has been applied in the construction sector since the 1990s and is now more and more embedded in European public policies, e.g., for Environmental Product Declaration regulation or for building labeling schemes. As far as the authors know, these initiatives mainly rely on background impact data of building products provided by different databases' providers. The new product-specific and company-specific EPD data allow having more than one data for describing a building material. But are these new databases really displaying similar LCA results compared to generic databases? Does it depend on which impact category (e.g., global warming, acidification, toxicity) is considered? To answer these research questions, this paper assesses numerical and methodological differences of two existing LCA databases for building LCAs: the ecoinvent generic database and one Environmental Product Declaration (EPD) database developed in France. After reviewing the main assumptions of these databases, numerical values of environmental impact are compared for 28 building materials using Life Cycle Impact Assessment (LCIA) indicators of the EN 15804 standard calculated based on cradle-to-gate ecoinvent and EPD Life Cycle Inventories (LCI). Global results at the database level indicate deviations of different magnitudes depending on the LCIA indicators and the building materials. While indicators correlated to fossil fuel consumption, such as the ADP, the GWP, and the primary energy demand, exhibit a small deviation (approximately 25 %), other indicators, such as the photochemical ozone formation (POCP), radioactive waste, and ADP elements, are found to be more variable between EPD and generic data (sometimes by more than 100 %). Three indicators are found to be systematically different between EPD and generic data (i.e., the EPD value being either higher or lower for all materials). Similarly, five building materials show systematic differences for all LCIA indicators. Specific deviations for one indicator and one material are also reported. The application of the two databases on three building LCA case studies (brick, reinforced concrete, and timber frame structures) identifies deviations due to the most influential materials. Current generic and EPD databases can present very different values at the database scale which depend on the type of environmental indicator. For building LCA results, the situation is different as generally speaking a limited number of materials controlled the impacts. Finally, recommendations are presented for each environmental indicator to improve the consistency of the building assessment from generic to product- and country-specific information.
引用
收藏
页码:1473 / 1490
页数:18
相关论文
共 50 条
  • [31] LIFE CYCLE IMPACT ASSESSMENT OF CONSTRUCTION MATERIALS OF A WOOD-BASED BUILDING IN AN ENVIRONMENTAL CONTEXT
    Mitterpach, Jozef
    Ileckova, Rozalia
    Stefko, Jozef
    ACTA FACULTATIS XYLOLOGIAE ZVOLEN, 2018, 60 (01): : 147 - 157
  • [32] Environmental evaluation of materials and building processes: application of the life cycle analysis to the construction of an industrial hall
    Courard, L
    Rademaker, C
    Teller, P
    MATERIALS AND STRUCTURES, 2001, 34 (241) : 404 - 412
  • [33] Hybrid life cycle assessment (H-LCA) for buildings and construction materials: A systematic review and meta-analysis
    Bakindi, Abdulrahman
    Wiberg, Aoife Houlihan
    Norman, Jonathan
    Marsh, Ellie
    Allen, Stephen
    BUILDING AND ENVIRONMENT, 2025, 272
  • [34] Application of the life cycle assessment (LCA) method for assessing the impact of mechanically loaded mining blasting materials on the environment
    Kukfisz, Bozena
    Maranda, Andrzej
    CHEMIK, 2014, 68 (01): : 34 - 38
  • [35] Life Cycle Assessment of Industrial Building Construction and Recovery Potential. Case Studies in Seville
    Marrero, Madelyn
    Rivero-Camacho, Cristina
    Martinez-Rocamora, Alejandro
    Alba-Rodriguez, Maria Desiree
    Solis-Guzman, Jaime
    PROCESSES, 2022, 10 (01)
  • [36] Cradle to site Life Cycle Assessment (LCA) of natural vs conventional building materials: A case study on cob earthen material
    Ben-Alon, Lola
    Loftness, Vivian
    Harries, Kent A.
    DiPietro, Gwen
    Hameen, Erica Cochran
    BUILDING AND ENVIRONMENT, 2019, 160
  • [37] The application of life cycle assessment for the optimization of pipe materials of building water supply and drainage system
    Xiong, Jiaqing
    Zhu, Junguo
    He, Yifan
    Ren, Sihui
    Huang, Wenping
    Lu, Fengyu
    SUSTAINABLE CITIES AND SOCIETY, 2020, 60
  • [38] Combining Life Cycle Assessment and Manufacturing System Simulation: Evaluating Dynamic Impacts from Renewable Energy Supply on Product-Specific Environmental Footprints
    Roedger, Jan-Markus
    Beier, Jan
    Schoenemann, Malte
    Schulze, Christine
    Thiede, Sebastian
    Bey, Niki
    Herrmann, Christoph
    Hauschild, Michael Z.
    INTERNATIONAL JOURNAL OF PRECISION ENGINEERING AND MANUFACTURING-GREEN TECHNOLOGY, 2021, 8 (03) : 1007 - 1026
  • [39] Assessment of building materials in the construction sector: A case study using life cycle assessment approach to achieve the circular economy
    Dsilva, Jacinta
    Zarmukhambetova, Saniya
    Locke, Jasmina
    HELIYON, 2023, 9 (10)
  • [40] Combining Life Cycle Assessment and Manufacturing System Simulation: Evaluating Dynamic Impacts from Renewable Energy Supply on Product-Specific Environmental Footprints
    Jan-Markus Rödger
    Jan Beier
    Malte Schönemann
    Christine Schulze
    Sebastian Thiede
    Niki Bey
    Christoph Herrmann
    Michael Z. Hauschild
    International Journal of Precision Engineering and Manufacturing-Green Technology, 2021, 8 : 1007 - 1026