Applying distance-to-target weighing methodology to evaluate the environmental performance of bio-based energy, fuels, and materials

被引:45
|
作者
Weiss, Martin
Patel, Martin
Heilmeier, Hermann
Bringezu, Stefan
机构
[1] Univ Utrecht, Dept STS, Copernicus Inst, NL-3584 CH Utrecht, Netherlands
[2] TU Bergakad Freiberg, Interdisciplinary Ecol Ctr, Biol Ecol Unit, D-09599 Freiberg, Germany
[3] Wuppertal Inst, Res Unit Mat Flows & Resource Management, D-42103 Wuppertal, Germany
关键词
biomass; life cycle assessment; environmental impact categories; distance-to-target weighing;
D O I
10.1016/j.resconrec.2006.06.003
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The enhanced use of biomass for the production of energy, fuels, and materials is one of the key strategies towards sustainable production and consumption. Various life cycle assessment (LCA) studies demonstrate the great potential of bio-based products to reduce both the consumption of non-renewable energy resources and greenhouse gas emissions. However, the production of biomass requires agricultural land and is often associated with adverse environmental effects such as eutrophication of surface and ground water. Decision making in favor of or against bio-based and conventional fossil product alternatives therefore often requires weighing of environmental impacts. In this article, we apply distance-to-target weighing methodology to aggregate LCA results obtained in four different environmental impact categories (i.e., non-renewable energy consumption, global warming potential, eutrophication potential, and acidification potential) to one environmental index. We include 45 bio- and fossil-based product pairs in our analysis, which we conduct for Germany. The resulting environmental indices for all product pairs analyzed range from - 19.7 to +0.2 with negative values indicating overall environmental benefits of bio-based products. Except for three options of packaging materials made from wheat and cornstarch, all bio-based products (including energy, fuels, and materials) score better than their fossil counterparts. Comparing the median values for the three options of biomass utilization reveals that bio-energy (-1.2) and bio-materials (-1.0) offer significantly higher environmental benefits than bio-fuels (-0.3). The results of this study reflect, however, subjective value judgments due to the weighing methodology applied. Given the uncertainties and controversies associated not only with distance-to-target methodologies in particular but also with weighing approaches in general, the authors strongly recommend using weighing for decision finding only as a supplementary tool separately from standardized LCA methodology. (c) 2006 Elsevier B.V. All rights reserved.
引用
收藏
页码:260 / 281
页数:22
相关论文
共 7 条
  • [1] Competing uses of biomass: Assessment and comparison of the performance of bio-based heat, power, fuels and materials
    Gerssen-Gondelach, S. J.
    Saygin, D.
    Wicke, B.
    Patel, M. K.
    Faaij, A. P. C.
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2014, 40 : 964 - 998
  • [2] ENERGY AND FEASIBILITY ANALYSIS OF APPLYING BIO-BASED PHASE CHANGE MATERIALS TO BUILDINGS IN EAST ASIA
    Gassar, Abdo Abdullah Ahmed
    Yun, Geun Young
    Kim, Sumin
    Han, Choong-Hee
    [J]. JOURNAL OF GREEN BUILDING, 2020, 15 (02): : 157 - 182
  • [3] Bio-based and bio-degradable nanofiber materials: A sustainable platform for energy, environmental, and biomedical applications
    Zhou, Jing
    Li, Xianglong
    Zhang, Zhao
    Hou, Teng
    Xu, Jingying
    Wang, Yaru
    Ye, Hao
    Yang, Bin
    [J]. Chemical Engineering Journal, 1600, 491
  • [4] Bio-based and bio-degradable nanofiber materials: A sustainable platform for energy, environmental, and biomedical applications
    Zhou, Jing
    Li, Xianglong
    Zhang, Zhao
    Hou, Teng
    Xu, Jingying
    Wang, Yaru
    Ye, Hao
    Yang, Bin
    [J]. CHEMICAL ENGINEERING JOURNAL, 2024, 491
  • [5] High performance bio-based elastomers: energy efficient and sustainable materials for tires
    Lei, Weiwei
    Zhou, Xinxin
    Russell, Thomas P.
    Hua, Kuo-chih
    Yang, Xiaoping
    Qiao, He
    Wang, Wencai
    Li, Fanzhu
    Wang, Runguo
    Zhang, Liqun
    [J]. JOURNAL OF MATERIALS CHEMISTRY A, 2016, 4 (34) : 13058 - 13062
  • [6] APPLYING THE MECO PRINCIPLE TO ASSESS THE ENVIRONMENTAL IMPACT OF CONVENTIONAL AND BIO-BASED COMPOSITE MATERIALS IN A CASE STUDY OF A SMALL-SCALE WIND TURBINE BLADE
    Markussen, C. M.
    Bottoli, F.
    Pignatti, L.
    Madsen, B.
    Mikkelsen, L. P.
    Brondsted, P.
    Andersen, T. L.
    [J]. COMPOSITE MATERIALS FOR STRUCTURAL PERFORMANCE: TOWARDS HIGHER LIMITS, 2011, : 365 - 375
  • [7] Bio-based and recycled-waste materials in buildings: A study of energy performance of hemp-lime concrete and recycled-polyethylene terephthalate facades for office facilities in France and Italy
    Moussa, Tala
    Maalouf, Chadi
    Ingrao, Carlo
    Scrucca, Flavio
    Costantine, Georges
    Asdrubali, Francesco
    [J]. SCIENCE AND TECHNOLOGY FOR THE BUILT ENVIRONMENT, 2018, 24 (05) : 492 - 501