Life cycle greenhouse gas emissions of Electric Vehicles in China: Combining the vehicle cycle and fuel cycle

被引:158
|
作者
Qiao, Qinyu [1 ,2 ,4 ]
Zhao, Fuquan [1 ,2 ]
Liu, Zongwei [1 ,2 ]
He, Xin [5 ]
Hao, Han [1 ,2 ,3 ]
机构
[1] Tsinghua Univ, State Key Lab Automot Safety & Energy, Beijing 100084, Peoples R China
[2] Tsinghua Univ, Tsinghua Automot Strategy Res Inst, Beijing 100084, Peoples R China
[3] Tsinghua Univ, China Automot Energy Res Ctr, Beijing 100084, Peoples R China
[4] Harvard Kennedy Sch, Belfer Ctr Sci & Int Affairs, Cambridge, MA 02135 USA
[5] Aramco Serv Co, Aramco Res Ctr Detroit, 46535 Peary Ct, Novi, MI 48377 USA
基金
中国国家自然科学基金;
关键词
Electric vehicle; Life cycle assessment; Greenhouse gas; China; ENERGY-CONSUMPTION; HYBRID VEHICLES; DRIVING CYCLE; GHG EMISSIONS; IMPACT; END; MANAGEMENT;
D O I
10.1016/j.energy.2019.04.080
中图分类号
O414.1 [热力学];
学科分类号
摘要
Electric Vehicles (EVs) are known as the future vehicles that have the potential to provide environmental benefits all over the world. The Greenhouse Gas (GHG) emissions of EVs have already been estimated for each phase in the life cycle. However, the dedicated estimations in China are not complete enough to reveal the systematic impacts of real manufacturing technologies, driving cycle and recycling processes. This study has analyzed the GHG emissions of the Cradle-to-Gate (CTG) phase, Well-to-Wheel (WTW) phase and Grave-to-Cradle (GTC) phase for different vehicles in different time to figure out the key drivers and reduction opportunities, which are based on the well-selling A0-A class compact sedan model currently in China. The results indicate that the life cycle GHG emissions of an EV are about 41.0 t CO(2)eq in 2015, 18% lower than those of an Internal Combustion Engine Vehicle (ICEV). This value will decrease to only 34.1 t CO(2)eq in 2020 due to the reduction of GHG emission factor of electricity. Although the WTW phase is the largest contributor of GHG emissions for both vehicles, the proportions of each phase are quite different. The GHG emissions of the WTW phase of an EV are decreasing rapidly, but the CTG phase will not be improved at the same speed, which may become a barrier to fully take the environmental benefits of an EV. There are two major opportunities for reduction in the entire life cycle besides fuel economy development. One is EV recycling that can reduce the GHG emissions of the CTG phase by about a half. The other is the improvement of clean power grid that can further reduce the GHG emissions of the WTW phase. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页码:222 / 233
页数:12
相关论文
共 50 条
  • [41] REASSESSMENT OF LIFE CYCLE GREENHOUSE GAS EMISSIONS FOR SOYBEAN BIODIESEL
    Pradhan, A.
    Shrestha, D. S.
    Van Gerpen, J.
    McAloon, A.
    Yee, W.
    Haas, M.
    Duffield, J. A.
    [J]. TRANSACTIONS OF THE ASABE, 2012, 55 (06) : 2257 - 2264
  • [42] Assessment of the life cycle greenhouse gas emissions in the food industry
    Moresi, Mauro
    [J]. AGRO FOOD INDUSTRY HI-TECH, 2014, 25 (03): : 53 - 62
  • [43] Life cycle emissions of greenhouse gas for ammonia scrubbing technology
    Wang, Shujuan
    Liu, Fang
    Chen, Changhe
    Xu, Xuchang
    [J]. KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2007, 24 (03) : 495 - 498
  • [44] Life cycle emissions of greenhouse gas for ammonia scrubbing technology
    Shujuan Wang
    Fang Liu
    Changhe Chen
    Xuchang Xu
    [J]. Korean Journal of Chemical Engineering, 2007, 24 : 495 - 498
  • [45] Life Cycle Greenhouse Gas Emissions of Nuclear Electricity Generation
    Warner, Ethan S.
    Heath, Garvin A.
    [J]. JOURNAL OF INDUSTRIAL ECOLOGY, 2012, 16 : S73 - S92
  • [46] Life cycle evaluation of greenhouse gas emissions of a highway tunnel: A case study in China
    Guo, Chun
    Xu, Jianfeng
    Yang, Lu
    Guo, Xiong
    Liao, Jixuan
    Zheng, Xin
    Zhang, Zhenhua
    Chen, Xiaofeng
    Yang, Kun
    Wang, Mingnian
    [J]. JOURNAL OF CLEANER PRODUCTION, 2019, 211 : 972 - 980
  • [47] Life cycle greenhouse gas emissions of aluminum based on regional industrial transfer in China
    Ding, Ning
    Liu, Ning
    Lu, Bin
    Yang, Jianxin
    [J]. JOURNAL OF INDUSTRIAL ECOLOGY, 2021, 25 (06) : 1657 - 1672
  • [48] Life Cycle Greenhouse Gas Emissions of the USPS Next-Generation Delivery Vehicle Fleet
    Woody, Maxwell
    Vaishnav, Parth
    Craig, Michael T.
    Keoleian, Gregory A.
    [J]. ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2022, 56 (18) : 13391 - 13397
  • [49] Harmonization of initial estimates of shale gas life cycle greenhouse gas emissions for electric power generation
    Heath, Garvin A.
    O'Donoughue, Patrick
    Arent, Douglas J.
    Bazilian, Morgan
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2014, 111 (31) : E3167 - E3176
  • [50] Life cycle analysis of internal combustion engine, electric and fuel cell vehicles for China
    Wang, Dawei
    Zamel, Nada
    Jiao, Kui
    Zhou, Yibo
    Yu, Shuhai
    Du, Qing
    Yin, Yan
    [J]. ENERGY, 2013, 59 : 402 - 412