Challenges of second-life concepts for retired electric vehicle batteries

被引:73
作者
Borner, Martin F. [1 ,2 ,3 ]
Frieges, Moritz H. [4 ]
Spath, Benedikt [4 ]
Sputz, Kathrin [5 ]
Heimes, Heiner H. [4 ]
Sauer, Dirk Uwe [1 ,2 ,3 ,6 ]
Li, Weihan [1 ,2 ]
机构
[1] Rhein Westfal TH Aachen, Inst Power Elect & Elect Drives ISEA, Chair Elect Energy Convers & Storage Syst, Aachen, Germany
[2] Julich Aachen Res Alliance, JARA Energy, Aachen, Germany
[3] Rhein Westfal TH Aachen, Inst Power Generat & Storage Syst PGS, ERC, Aachen, Germany
[4] Rhein Westfal TH Aachen, Chair Prod Engn Mobil Components PEM, Aachen, Germany
[5] Rhein Westfal TH Aachen, Inst Machine Elements & Syst Engn MSE, Aachen, Germany
[6] GMBH, Helmholtz Inst Munster HI MS, IEK-12, Julich, Germany
关键词
LITHIUM-ION BATTERIES; END-OF-LIFE; STATE; FEASIBILITY; ENERGY; STRATEGIES; SYSTEM; CHARGE;
D O I
10.1016/j.xcrp.2022.101095
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Identifying the optimal way to process retired batteries has gained attention from academics and industry. High energy and power density requirements of electric vehicles (EVs) might cause batteries to be retired together with the vehicle that could still be used in other applications. Therefore, transferring batteries into "second-life" applications has the potential to optimize costs and resource utilization. The scope of this work is to give a perspective on challenges that hinder second-life business models. First, the battery life cycle is considered, showing potential costly phases that are necessary for second life applications. After this, requirements of typically discussed second-life applications and battery availability challenges are analyzed. Advanced battery diagnostics are necessary, and missing open standards for the exchange of design and status information are described. Exploiting the potential of a second life requires addressing challenges during the development process. Therefore, the last section describes challenges of developing multi-life battery systems.
引用
收藏
页数:19
相关论文
共 93 条
[1]   Environmental feasibility of re-use of electric vehicle batteries [J].
Ahmadi, Leila ;
Yip, Arthur ;
Fowler, Michael ;
Young, Steven B. ;
Fraser, Roydon A. .
SUSTAINABLE ENERGY TECHNOLOGIES AND ASSESSMENTS, 2014, 6 :64-74
[2]   US end-of-life electric vehicle batteries: Dynamic inventory modeling and spatial analysis for regional solutions [J].
Ai, Ning ;
Zheng, Junjun ;
Chen, Wei-Qiang .
RESOURCES CONSERVATION AND RECYCLING, 2019, 145 :208-219
[3]   Enhancing Battery Lifetime In PV Battery Home Storage System Using Forecast Based Operating Strategies [J].
Angenendt, Georg ;
Zurmuehlen, Sebastian ;
Mir-Montazeri, Ramin ;
Magnor, Dirk ;
Sauer, Dirk Uwe .
10TH INTERNATIONAL RENEWABLE ENERGY STORAGE CONFERENCE, IRES 2016, 2016, 99 :80-88
[4]  
[Anonymous], Oficical Jorunal L, V20, P1
[5]   Lithium-Ion Battery Degradation Indicators Via Incremental Capacity Analysis [J].
Ansean, David ;
Manuel Garcia, Victor ;
Gonzalez, Manuela ;
Blanco-Viejo, Cecilio ;
Carlos Viera, Juan ;
Fernandez Pulido, Yoana ;
Sanchez, Luciano .
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS, 2019, 55 (03) :2992-3002
[6]   Extended utilization of electric vehicles and their re-used batteries to support the building energy management system [J].
Aziz, Muhammad ;
Oda, Takuya ;
Kashiwagi, Takao .
CLEAN, EFFICIENT AND AFFORDABLE ENERGY FOR A SUSTAINABLE FUTURE, 2015, 75 :1938-1943
[7]   Inhomogeneities and Cell-to-Cell Variations in Lithium-Ion Batteries, a Review [J].
Beck, David ;
Dechent, Philipp ;
Junker, Mark ;
Sauer, Dirk Uwe ;
Dubarry, Matthieu .
ENERGIES, 2021, 14 (11)
[8]  
Becker J., 2019, Umwidmung und Weiterverwendung von Traktionsbatterien
[9]  
BloombergNEF, 2016, 95 GWH EV BATT BE EX
[10]  
BloombergNEF, 2022, BNEF EVO REP 2020