A review of fleet-based life-cycle approaches focusing on energy and environmental impacts of vehicles

被引:46
|
作者
Garcia, Rita [1 ]
Freire, Fausto [1 ]
机构
[1] Univ Coimbra, Dept Mech Engn, ADAI LAETA, Polo 2 Campus, P-3030788 Coimbra, Portugal
来源
关键词
Electric vehicles; Energy consumption; Greenhouse gas emissions (GHG); Life-cycle assessment (LCA); Vehicle fleets; GREENHOUSE-GAS EMISSIONS; LAND-USE CHANGE; PLUG-IN HYBRID; ELECTRIC VEHICLES; SCENARIO ANALYSIS; ROAD TRANSPORT; CO2; EMISSIONS; CARBON; LCA; UNCERTAINTY;
D O I
10.1016/j.rser.2017.05.145
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Alternative vehicle propulsion technologies are being promoted to reduce energy consumption and environmental impacts in transportation. Life-cycle assessment (LCA) is often used to assess and compare the environmental impacts of these technologies, but, in its traditional form, it lacks the ability to capture the transient effects as new vehicles displace older vehicles in the fleet. Fleet-based life-cycle (LC) approaches - which combine the LCA methodology with fleet models that describe the stocks and flows associated with a class of products over time have been proposed to circumvent this issue. This article presents a critical review of the literature addressing fleet-based LC approaches by providing an overview of modeling approaches, its main applications, and an analysis of the key aspects underlying environmental and energy impacts of vehicle fleets (focusing on electrification pathways). Fleet-based LC approaches have been applied with different purposes (e.g., to model recycling processes, to assess trade-offs between manufacturing and use impacts; to optimize product service life). The issue of evaluating the impacts of introducing alternative technologies is appropriately addressed by a fleet-based LC approach, because it allows for the capture of displacement effects, technological improvements over time, and changes in background processes. Several studies have used such an approach to assess scenarios of evolution of the light-duty fleet. The main key aspects are: fleet penetration rate, electricity source, fuel economy improvements, and vehicle weight reduction. Emission reductions were found to be very dependent on the underlying assumptions. Reducing fuel consumption is one of the key ways to reduce fleet GHG emissions, but it needs to be combined with other measures, such as high penetration of advanced technologies, to bring about significant reductions. The electricity generation source has also a large impact on the fleet GHG emissions and increasing renewable energy penetration is key to reduce overall emissions.
引用
收藏
页码:935 / 945
页数:11
相关论文
共 50 条
  • [31] Environmental life-cycle impacts of CRT and LCD desktop computer displays
    Socolof, ML
    Overly, JG
    Geibig, JR
    JOURNAL OF CLEANER PRODUCTION, 2005, 13 (13-14) : 1281 - 1294
  • [32] Sensitivity analysis of design variables in life-cycle environmental impacts of buildings
    Zhou, Yijun
    Tam, Vivian WY.
    Le, Khoa N.
    JOURNAL OF BUILDING ENGINEERING, 2023, 65
  • [33] QUANTITATIVE ASSESSMENT OF LIFE-CYCLE ENVIRONMENTAL IMPACTS OF BRIDGES BASED ON ECO-INDICATOR 99
    Liu, Mu-Yu
    Dan Ou-Yang
    4TH INTERNATIONAL SYMPOSIUM ON LIFETIME ENGINEERING OF CIVIL INFRASTRUCTURE, 2009, : 255 - 260
  • [34] Life-Cycle Thinking and the LEED Rating System: Global Perspective on Building Energy Use and Environmental Impacts
    Al-Ghamdi, Sami G.
    Bilec, Melissa M.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2015, 49 (07) : 4048 - 4056
  • [35] Life-Cycle Assessment of Consumer Electronics A review of methodological approaches
    Andrae, Anders S. G.
    IEEE CONSUMER ELECTRONICS MAGAZINE, 2016, 5 (01) : 51 - 60
  • [36] Environmental impact in a life-cycle framework: Practical approaches for decision making
    Todd, JA
    TOOLS AND METHODS FOR POLLUTION PREVENTION, 1999, 62 : 131 - 140
  • [37] Review of energy storage systems for vehicles based on technology, environmental impacts, and costs
    Balali, Yasaman
    Stegen, Sascha
    RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2021, 135
  • [38] Modeling the Spread of Electric Vehicles Based on Life-Cycle Cost
    Xiao, Wenbin
    Lin, Yanhui
    Zheng, Xiao
    Ye, Shiqi
    ADVANCED RESEARCH ON ENGINEERING MATERIALS, ENERGY, MANAGEMENT AND CONTROL, PTS 1 AND 2, 2012, 424-425 : 146 - +
  • [39] A Review on Environmental Efficiency Evaluation of New Energy Vehicles Using Life Cycle Analysis
    Wang, Nenming
    Tang, Guwen
    SUSTAINABILITY, 2022, 14 (06)
  • [40] The environmental evaluation of utilising geothermal energy with the life-cycle method
    Benke, Boglarka
    Patzay, Gyoergy
    PERIODICA POLYTECHNICA-CHEMICAL ENGINEERING, 2010, 54 (02) : 63 - 69