Towards more flexibility and transparency in life cycle inventories for Lithium-ion batteries

被引:60
作者
Crenna, Eleonora [1 ]
Gauch, Marcel [1 ]
Widmer, Rolf [1 ]
Waeger, Patrick [1 ]
Hischier, Roland [1 ]
机构
[1] Empa, Technol & Soc Lab, Lerchenfeldstr 5, CH-9014 St Gallen, Switzerland
关键词
Lithium-ion battery; Electric vehicles; Life cycle inventory modelling; Environmental impact; Life cycle assessment; Sensitivity analysis; ENVIRONMENTAL-IMPACT; TRACTION BATTERIES;
D O I
10.1016/j.resconrec.2021.105619
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Electric vehicles are gaining increasing room in the global market, since they are seen amongst the most promising solutions to cope with the growing concerns related to climate change and environmental pollution. The successful evolution of the transportation sector towards electro-mobility depends on the battery chemistry and technology, and its environmental impacts. However, the poor availability of data at the commercial production scale and the diversity in modelling choices make evaluating the environmental impacts of Lithium-ion batteries (LIB) difficult and uncertain. We aim at contributing to the creation of flexible and transparent life cycle inventories (LCI) of LIB for background databases by means of a consequently modular approach that will be applicable in the future as common framework to model new generations of LIB. In the present paper, we focus on (i) compiling modular LCI datasets of current and near-future market LIB chemistries, namely NMC111, NMC811 and NCA, by using the most recent data from existing sources, and (ii) exemplarily assessing the environmental impacts of the three modelled chemistries. This assessment takes into consideration a wide range of impact categories, with a focus on climate change and the comparison with the available literature in the sector. The whole is complemented with several sensitivity analyses, which show the relevance of transparency when making choices in compiling the LCI.
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页数:9
相关论文
共 41 条
[11]  
Dai Q., 2018, UPDATE BILL OF MAT C
[12]   Life Cycle Analysis of Lithium-Ion Batteries for Automotive Applications [J].
Dai, Qiang ;
Kelly, Jarod C. ;
Gaines, Linda ;
Wang, Michael .
BATTERIES-BASEL, 2019, 5 (02)
[13]   Life Cycle Assessment in the automotive sector: a comparative case study of Internal Combustion Engine (ICE) and electric car [J].
Del Pero, Francesco ;
Delogu, Massimo ;
Pierini, Marco .
AIAS 2018 INTERNATIONAL CONFERENCE ON STRESS ANALYSIS, 2018, 12 :521-537
[14]   Comparative Life Cycle Assessment of a Novel Al-Ion and a Li-Ion Battery for Stationary Applications [J].
Delgado, Mario Amin Salgado ;
Usai, Lorenzo ;
Pan, Qiaoyan ;
Stromman, Anders Hammer .
MATERIALS, 2019, 12 (19)
[15]   Identifying key assumptions and differences in life cycle assessment studies of lithium-ion traction batteries with focus on greenhouse gas emissions [J].
Ellingsen, Linda Ager-Wick ;
Hung, Christine Roxanne ;
Stromman, Anders Hammer .
TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT, 2017, 55 :82-90
[16]   Life Cycle Assessment of a Lithium-Ion Battery Vehicle Pack [J].
Ellingsen, Linda Ager-Wick ;
Majeau-Bettez, Guillaume ;
Singh, Bhawna ;
Srivastava, Akhilesh Kumar ;
Valoen, Lars Ole ;
Stromman, Anders Hammer .
JOURNAL OF INDUSTRIAL ECOLOGY, 2014, 18 (01) :113-124
[17]  
Emilsson E., 2019, C444 IVL SWED ENV RE
[18]  
Garg A., 2006, IPCC Guidelines for National Greenhouse Gas Inventories. -Prepared by the National Greenhouse Gas Inventories
[19]  
Goedkoop M., 2009, ReCiPe 2008-A life cycle impact assessment method which comprises harmonised category indicators at the midpoint and the endpoint level
[20]   Establishing life cycle inventories of chemicals based on differing data availability [J].
Hischier, R ;
Hellweg, S ;
Capello, C ;
Primas, A .
INTERNATIONAL JOURNAL OF LIFE CYCLE ASSESSMENT, 2005, 10 (01) :59-67