A future perspective on lithium-ion battery waste flows from electric vehicles

被引:309
|
作者
Richa, Kirti [1 ]
Babbitt, Callie W. [1 ]
Gaustad, Gabrielle [1 ]
Wang, Xue [1 ]
机构
[1] Rochester Inst Technol, Golisano Inst Sustainabil, Rochester, NY 14623 USA
基金
美国国家科学基金会;
关键词
Lithium-ion batteries; Electric vehicles; Material flow analysis; Waste management; SECONDARY BATTERIES; CATHODE MATERIALS; ENERGY ANALYSIS; FUEL-CELLS; RECOVERY; STORAGE; METAL; CYCLE; AVAILABILITY; SYSTEMS;
D O I
10.1016/j.resconrec.2013.11.008
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
As a proactive step towards understanding future waste management challenges, this paper presents a future oriented material flow analysis (MFA) used to estimate the volume of lithium-ion battery (LIB) wastes to be potentially generated in the United States due to electric vehicle (EV) deployment in the near and long term future. Because future adoption of LIB and EV technology is uncertain, a set of scenarios was developed to bound the parameters most influential to the MFA model and to forecast "low," "baseline," and "high" projections of future end-of-life battery outflows from years 2015 to 2040. These models were implemented using technology forecasts, technical literature, and bench-scale data characterizing battery material composition. Considering the range from the most conservative to most extreme estimates, a cumulative outflow between 0.33 million metric tons and 4 million metric tons of lithium-ion cells could be generated between 2015 and 2040. Of this waste stream, only 42% of the expected materials (by weight) is currently recycled in the U.S., including metals such as aluminum, cobalt, copper, nickel, and steel. Another 10% of the projected EV battery waste stream (by weight) includes two high value materials that are currently not recycled at a significant rate: lithium and manganese. The remaining fraction of this waste stream will include materials with low recycling potential, for which safe disposal routes must be identified. Results also indicate that because of the potential "lifespan mismatch" between battery packs and the vehicles in which they are used, batteries with high reuse potential may also be entering the waste stream. As such, a thbust end-of-life battery management system must include an increase in reuse avenues, expanded recycling capacity, and ultimate disposal routes that minimize risk to human and environmental health. (C) 2013 Elsevier B.V. All rights reserved.
引用
收藏
页码:63 / 76
页数:14
相关论文
共 50 条
  • [31] Recycling of End-of-Life Lithium-Ion Battery of Electric Vehicles
    Chan, Ka Ho
    Malik, Monu
    Anawati, John
    Azimi, Gisele
    RARE METAL TECHNOLOGY 2020, 2020, : 23 - 32
  • [32] A Review on the Fault and Defect Diagnosis of Lithium-Ion Battery for Electric Vehicles
    Zou, Bosong
    Zhang, Lisheng
    Xue, Xiaoqing
    Tan, Rui
    Jiang, Pengchang
    Ma, Bin
    Song, Zehua
    Hua, Wei
    ENERGIES, 2023, 16 (14)
  • [33] A New SOH Prediction Model for Lithium-ion Battery for Electric Vehicles
    Han, Huachun
    Xu, Haiping
    Yuan, Zengquan
    Shen, Yanling
    2014 17TH INTERNATIONAL CONFERENCE ON ELECTRICAL MACHINES AND SYSTEMS (ICEMS), 2014, : 997 - 1002
  • [34] Experimental Study of Lithium-ion Battery Thermal Behaviour for Electric and Hybrid Electric Vehicles
    Che Daud, Zul Hilmi
    Chrenko, Daniela
    Aglzim, El-Hassane
    Keromnes, Alan
    Le Moyne, Luis
    2014 IEEE VEHICLE POWER AND PROPULSION CONFERENCE (VPPC), 2014,
  • [35] Recycling lithium-ion batteries from electric vehicles
    Harper, Gavin
    Sommerville, Roberto
    Kendrick, Emma
    Driscoll, Laura
    Slater, Peter
    Stolkin, Rustam
    Walton, Allan
    Christensen, Paul
    Heidrich, Oliver
    Lambert, Simon
    Abbott, Andrew
    Ryder, Karl S.
    Gaines, Linda
    Anderson, Paul
    NATURE, 2019, 575 (7781) : 75 - 86
  • [36] Recycling lithium-ion batteries from electric vehicles
    Gavin Harper
    Roberto Sommerville
    Emma Kendrick
    Laura Driscoll
    Peter Slater
    Rustam Stolkin
    Allan Walton
    Paul Christensen
    Oliver Heidrich
    Simon Lambert
    Andrew Abbott
    Karl Ryder
    Linda Gaines
    Paul Anderson
    Nature, 2019, 575 : 75 - 86
  • [37] Transition from Electric Vehicles to Energy Storage: Review on Targeted Lithium-Ion Battery Diagnostics
    Kostenko, Ganna
    Zaporozhets, Artur
    ENERGIES, 2024, 17 (20)
  • [38] Dataset of fire tests with lithium-ion battery electric vehicles in road tunnels
    Sturm, Peter
    Foessleitner, Patrik
    Fruhwirt, Daniel
    Heindl, Simon Franz
    Heger, Oliver
    Galler, Robert
    Wenighofer, Robert
    Krausbar, Stefan
    DATA IN BRIEF, 2023, 46
  • [39] Modeling, simulation, and parameters identification of a lithium-ion battery used in electric vehicles
    Haghjoo, Yasaman
    Khaburi, Davood Arab
    2022 9TH IRANIAN CONFERENCE ON RENEWABLE ENERGY & DISTRIBUTED GENERATION (ICREDG), 2022,
  • [40] A comprehensive review on inconsistency and equalization technology of lithium-ion battery for electric vehicles
    Hua, Yang
    Zhou, Sida
    Cui, Haigang
    Liu, Xinhua
    Zhang, Cheng
    Xu, Xingwu
    Ling, Heping
    Yang, Shichun
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 2020, 44 (14) : 11059 - 11087