Life-Cycle analysis of economic and environmental effects for electric bus transit systems

被引:0
|
作者
Pei, Mingyang [1 ]
Hu, Yi [1 ]
Han, Weiji [2 ]
Qu, Xiaobo [3 ]
Zou, Changfu [4 ]
机构
[1] South China Univ Technol, Sch Civil Engn & Transportat, Guangzhou 510640, Peoples R China
[2] Shanghai Jiao Tong Univ, China UK Low Carbon Coll, Shanghai 201306, Peoples R China
[3] Tsinghua Univ, Sch Vehicle & Mobil, Beijing 100084, Peoples R China
[4] Chalmers Univ Technol, Dept Elect Engn, SE-412 96 Gothenburg, Sweden
关键词
Electric buses; Charging systems; Life -cycle cost; Environmental effect; Optimization; Battery degradation; CHARGING INFRASTRUCTURE; PLUG-IN; VEHICLE; MODEL; COST; ELECTRIFICATION; STATIONARY; DEPLOYMENT; EMISSIONS; OPERATION;
D O I
10.1016/j.trd.2024.104205
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Electric buses play a crucial role in reducing the carbon footprint. This study evaluates the life cycle costs (LCCs) and environmental impacts of three e-bus transit systems: stationary charging, battery swapping, and dynamic wireless charging. A mixed-integer nonlinear optimization problem is formulated to determine the optimal design parameters for the charging infrastructure, bus fleet size, and battery capacity for each e-bus transit system considering battery degradation. Taking Guangzhou's Bus Rapid Transit (BRT) system as an example, a sensitivity analysis of the optimized solution is conducted. The LCC analysis framework is extended to BRT systems in 38 cities globally. The results indicate the superiority of battery swapping in most cases, while stationary charging and dynamic wireless charging are more competitive in cases with long circuit lengths and high service frequencies. Dynamic wireless charging becomes the best option when charging infrastructure is shared with other bus lines or private cars.
引用
收藏
页数:27
相关论文
共 50 条
  • [31] Life-cycle economic and environmental assessment of warm stone mastic asphalt
    Leng, Zhen
    Al-Qadi, Imad L.
    Cao, Ruijun
    [J]. TRANSPORTMETRICA A-TRANSPORT SCIENCE, 2018, 14 (07) : 562 - 575
  • [32] Economic input-output models for environmental life-cycle assessment
    Hendrickson, Chris
    Horvath, Arpad
    Joshi, Satish
    Lave, Lester
    [J]. Environmental Science and Technology, 1998, 32 (07):
  • [33] Economic input-output models for environmental life-cycle assessment
    Hendrickson, C
    Horvath, A
    Joshi, S
    Lave, L
    [J]. ENVIRONMENTAL SCIENCE & TECHNOLOGY, 1998, 32 (07) : 184A - 191A
  • [34] Life-cycle and techno-economic analysis of utility-connected algae systems
    Rickman, Melissa
    Pellegrino, John
    Hock, Jason
    Shaw, Stephanie
    Freeman, Brice
    [J]. ALGAL RESEARCH-BIOMASS BIOFUELS AND BIOPRODUCTS, 2013, 2 (01): : 59 - 65
  • [35] Life-cycle environmental and economic assessment of sewage sludge treatment in China
    Xu, Changqing
    Chen, Wei
    Hong, Jinglan
    [J]. JOURNAL OF CLEANER PRODUCTION, 2014, 67 : 79 - 87
  • [36] Life-cycle environmental impactand energy efficiency analysis of different solar hotwater systems
    不同太阳能热水系统的全生命周期环境影响和能源效益分析
    [J]. Li, Nan (nanlicqu@126.com), 2018, Science Press (39):
  • [37] Life-cycle analysis and environmental impact assessment of heating and air-conditioning systems
    Prek, M
    [J]. ADVANCES IN BUILDING TECHNOLOGY, VOLS I AND II, PROCEEDINGS, 2002, : 1485 - 1492
  • [38] Climate and Environmental Effects of Electric Vehicles versus Compressed Natural Gas Vehicles in China: A Life-Cycle Analysis at Provincial Level
    Huo, Hong
    Zhang, Qiang
    Liu, Fei
    He, Kebin
    [J]. ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2013, 47 (03) : 1711 - 1718
  • [39] LIFE-CYCLE ANALYSIS
    MUNN, P
    [J]. JOCCA-SURFACE COATINGS INTERNATIONAL, 1995, 78 (02): : 78 - 78
  • [40] AGE AND ECONOMIC DEPENDENCY IN PERU - A FAMILY LIFE-CYCLE ANALYSIS
    TIENDA, M
    [J]. JOURNAL OF MARRIAGE AND THE FAMILY, 1980, 42 (03): : 639 - 652