New cathodes now, recycling later: Dynamic scenarios to reduce battery material use and greenhouse gas emissions from US light-duty electric vehicle fleet

被引:11
作者
Tarabay, Bassel [1 ]
Milovanoff, Alexandre [1 ]
Abdul-Manan, Amir F. N. [2 ]
Mckechnie, Jon [3 ]
MacLean, Heather. L. [1 ]
Posen, I. Daniel [1 ]
机构
[1] Univ Toronto, Civil & Mineral Engn, 35 St George St, Toronto, ON M5S 1A4, Canada
[2] Saudi Aramco, Res Dev Ctr R&D, Strateg Transport Anal Team, Fuel Technol R&D, Dhahran 31311, Saudi Arabia
[3] Univ Nottingham, Fac Engn, Sustainable Proc Technol, Nottingham NG7 2RD, Nottinghamshire, England
关键词
Electric vehicles; Climate change; Lithium-ion batteries; Critical metals; Recycling; Battery chemistry; LIFE-CYCLE ASSESSMENT; LITHIUM; ELECTRIFICATION;
D O I
10.1016/j.resconrec.2023.107028
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
We evaluated the battery material demand and GHG emissions implications from high EV and very aggressive Plug-in Hybrid EV (PHEV) penetration rates for the U.S. light-duty vehicle fleet from 2020 to 2050. If the U.S. relies primarily on EV deployment to decarbonize passenger transport, there are potentially significant supply constraints over the next decade, particularly for cobalt, lithium, and nickel. Very aggressive PHEV deployment has the potential to reduce GHGs and with similar to 80% lower demand on critical metals. Recycling can play a major role reducing metal demand in the long-term but until 2035, shifting to an iron-based battery cathode reduces critical metal use by more than recycling would but with higher charging emissions due to increased weight. Increasing recycling, shifting battery chemistry, and adopting low-carbon electricity for battery production can avoid 250 million tonnes CO(2)e in cumulative GHG emissions from 2020 to 2050 (equivalent to 15% of U.S. transportation sector's 2020 GHG emissions).
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页数:12
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共 100 条
  • [31] EIA, 2021, ANN ENERGY OUTLOOK 2
  • [32] Ellingsen L.A. W., 2016, Environ. Res. Lett, V2016, P6
  • [33] Emissions Analytics, 2020, POLL TYR WEAR 1000 T
  • [34] EPA, 2021, EXPL EL PLUG IN HYBR
  • [35] EPA, 2022, FAST FACTS TRANSP GR
  • [36] A sustainability assessment of electric vehicles as a personal mobility system
    Faria, Ricardo
    Moura, Pedro
    Delgado, Joaquim
    de Ailmeida, Anibal T.
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2012, 61 : 19 - 30
  • [37] Fortier S.M., 2018, USGS, V3359, P1, DOI DOI 10.3133/OFR20181021
  • [38] Gaines L., 2020, MODELING ANAL BATTER
  • [39] Gaines L., 2009, Lithium Ion Batteries: Possible Materials Issues
  • [40] Glandorf J., 2020, On the Move: Unpacking the Challenges and Opportunities of Electric Vehicles