Model-based analysis of the limits of recycling for its contribution to climate change mitigationModellgestützte Analyse der Grenzen des Beitrags von Recycling zum Klimaschutz

被引:0
作者
Philipp Schäfer
Mario Schmidt
机构
[1] Pforzheim University,Institute for Industrial Ecology
[2] Leuphana University Lüneburg,Faculty of Sustainability
来源
Sustainability Management Forum | NachhaltigkeitsManagementForum | 2021年 / 29卷 / 2期
关键词
Climate change; Cumulative energy demand; End-of-life recycling rates; Metal concentrations; Metal recycling;
D O I
10.1007/s00550-021-00515-7
中图分类号
学科分类号
摘要
The concept of Circular Economy (CE) and its main strategy recycling are seen as one of the most important measures to achieve sustainable development. Meanwhile, however, concerns are being raised in the scientific community about the conceptualization and orientation of CE. One major issue is that CE is in danger of becoming an end in itself, with the goal of completely closed material cycles. Its contribution to sustainable development is gradually fading into the background. To contribute to this ongoing discussion, we focus in our article on the recycling of metals as part of CE and its contribution to climate protection, as one of the main aspects of sustainable development. Based on life cycle assessment and substance flow modelling carried out in our previous works, we show that metal recycling in most cases requires much less energy and therefore results in much lower greenhouse gas (GHG) emissions than primary production. However, this is by no means without limitations. We show empirically that metal concentration is a significant factor that determines the energy required for recycling. If the metals are too diluted in the technosphere, as it is indeed the case for several metal applications, their recycling require much more energy than the alternative primary production, and thus intensifying rather than mitigating climate change.
引用
收藏
页码:65 / 75
页数:10
相关论文
共 134 条
[1]  
Amato A(2017)Environmental impact assessment of different end-of-life LCD management strategies Waste Manag 59 432-441
[2]  
Rocchetti L(2012)Metal recovery from high-grade WEEE: a life cycle assessment J Hazard Mater 207–208 8-14
[3]  
Beolchini F(2013)Recycling of rare earths. A critical review J Clean Prod 51 1-22
[4]  
Bigum M(2017)The emergence of circular economy: a new framing around prolonging resource productivity J Ind Ecol 21 603-614
[5]  
Brogaard L(2017)Taking the circularity to the next level: a special issue on the circular economy J Ind Ecol 21 476-482
[6]  
Christensen TH(2016)Metal dissipation and inefficient recycling intensify climate forcing Environ Sci Technol 49 9443-9451
[7]  
Binnemans K(2015)Lost by design Environ Sci Technol 16 687-486
[8]  
Jones PT(2018)Backlighting the European indium recycling potentials J Ind Ecol 21 483-7550
[9]  
Tom P(2017)Circular economy: theoretical benchmark or perpetual motion machine? J Ind Ecol 41 7543-2497
[10]  
Blanpain B(2007)What gets recycled? An information theory based model for product recycling Environ Sci Technol 52 2491-335