Life cycle assessment comparison of electric and internal combustion vehicles: A review on the main challenges and opportunities

被引:2
|
作者
da Costa, Vinicius Braga Ferreira [1 ]
Bitencourt, Leonardo [2 ]
Dias, Bruno Henriques [3 ]
Soares, Tiago [4 ]
Andrade, Jorge Vleberton Bessa de [1 ]
Bonatto, Benedito Donizeti [1 ]
机构
[1] Univ Fed Itajuba, Inst Elect Syst & Energy, BR-37500903 Itajuba, MG, Brazil
[2] Fed Fluminense Univ, Elect Engn Dept, BR-24210346 Niteroi, RJ, Brazil
[3] Univ Fed Juiz de Fora, Elect Energy Dept, BR-36036900 Juiz De Fora, MG, Brazil
[4] Inst Syst & Comp Engn Technol & Sci, Ctr Power & Energy Syst, Porto, Portugal
来源
基金
巴西圣保罗研究基金会;
关键词
Electric vehicles; Internal combustion engine vehicles; Energy storage; Life cycle assessment; Environmental impacts; Systematic literature review; PLUG-IN HYBRID; COMPARATIVE ENVIRONMENTAL ASSESSMENT; GREENHOUSE-GAS EMISSIONS; LITHIUM-ION BATTERIES; ENERGY-CONSUMPTION; IMPACTS; CARBON; MIX; PERFORMANCE; HYDROGEN;
D O I
10.1016/j.rser.2024.114988
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
A notable shift from an internal combustion engine vehicles (ICEVs) fleet to an electric vehicles (EVs) fleet is expected in the medium term due to increasing environmental concerns and technological breakthroughs. In this context, this paper conducts a systematic literature review on life cycle assessment (LCA) research of EVs compared to ICEVs based on highly impactful articles. Several essential aspects and characteristics were identified and discussed, such as the assumed EV types, scales, models, storage technologies, boundaries, lifetime, electricity consumption, driving cycles, combustion fuels, locations, impact assessment methods, and functional units. Furthermore, LCA results in seven environmental impact categories were gathered and evaluated in detail. The research indicates that, on average, battery electric vehicles are superior to ICEVs in terms of greenhouse gas (GHG) emissions (182.9 g CO2-eq/km versus 258.5 g CO2-eq/km), cumulative energy demand (3.2 MJ/km versus 4.1 MJ/km), fossil depletion (49.7 g oil-eq/km versus 84.4 g oil-eq/km), and photochemical oxidant formation (0.47 g NMVOC-eq/km versus 0.61 g NMVOC-eq/km) but are worse than ICEVs in terms of human toxicity (198.1 g 1,4-DCB-eq/km versus 64.8 g 1,4-DCB-eq/km), particulate matter formation (0.32 g PM10-eq/km versus 0.26 g PM10-eq/km), and metal depletion (69.3 g Fe-eq/km versus 19.0 g Fe-eq/km). Emerging technological developments are expected to tip the balance in favor of EVs further. Based on the conducted research, we propose to organize the factors that influence the vehicle life cycle into four groups: user specifications, vehicle specifications, local specifications, and multigroup specifications. Then, a set of improvement opportunities is provided for each of these groups. Therefore, the present paper can contribute to future research and be valuable for decision-makers, such as policymakers.
引用
收藏
页数:17
相关论文
共 50 条
  • [1] Life cycle assessment of electric vehicles in comparison to combustion engine vehicles: A review
    Verma, Shrey
    Dwivedi, Gaurav
    Verma, Puneet
    MATERIALS TODAY-PROCEEDINGS, 2022, 49 : 217 - 222
  • [2] Comparative Life Cycle Assessment of Electric and Internal Combustion Engine Vehicles
    Kurkin, Andrey
    Kryukov, Evgeny
    Masleeva, Olga
    Petukhov, Yaroslav
    Gusev, Daniil
    ENERGIES, 2024, 17 (11)
  • [3] Electric or internal combustion vehicles? A Life Cycle Assessment in Sao Paulo
    Maselli, Michele
    Pelegrina, Juliano
    de Mello, Adriana Marotti
    Souza, Joao Valsecchi Ribeiro
    Marx, Roberto
    Priarone, Paolo C.
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2025, 212
  • [4] Life cycle environmental assessment of electric and internal combustion engine vehicles in China
    Yang, Lai
    Yu, Biying
    Yang, Bo
    Chen, Hao
    Malima, Gabriel
    Wei, Yi-Ming
    JOURNAL OF CLEANER PRODUCTION, 2021, 285
  • [5] Using monte carlo simulation in life cycle assessment for electric and internal combustion vehicles
    David L. McCleese
    Peter T. LaPuma
    The International Journal of Life Cycle Assessment, 2002, 7 : 230 - 236
  • [6] Using Monte Carlo simulation in life cycle assessment for electric and internal combustion vehicles
    McCleese, DL
    LaPuma, PT
    INTERNATIONAL JOURNAL OF LIFE CYCLE ASSESSMENT, 2002, 7 (04): : 230 - 236
  • [7] Life cycle assessment of electric vehicles and internal combustion engine vehicles: A case study of Hong Kong
    Shafique, Muhammad
    Azam, Anam
    Rafiq, Muhammad
    Luo, Xiaowei
    RESEARCH IN TRANSPORTATION ECONOMICS, 2022, 91
  • [8] Electric vs. Internal Combustion Vehicles: A Multi-Regional Life Cycle Assessment Comparison for Environmental Sustainability
    Mendzins, Karlis
    Barisa, Aiga
    ENVIRONMENTAL AND CLIMATE TECHNOLOGIES, 2024, 28 (01)
  • [9] Electrifying Green Logistics: A Comparative Life Cycle Assessment of Electric and Internal Combustion Engine Vehicles
    Oliveri, Ludovica Maria
    D'Urso, Diego
    Trapani, Natalia
    Chiacchio, Ferdinando
    ENERGIES, 2023, 16 (23)
  • [10] A new comparison between the life cycle greenhouse gas emissions of battery electric vehicles and internal combustion vehicles
    Ma, Hongrui
    Balthasar, Felix
    Tait, Nigel
    Riera-Palou, Xavier
    Harrison, Andrew
    ENERGY POLICY, 2012, 44 : 160 - 173