Effects of ambient temperature and trip characteristics on the energy consumption of an electric vehicle

被引:105
作者
Al-Wreikat, Yazan [1 ]
Serrano, Clara [2 ]
Sodre, Jose Ricardo [1 ]
机构
[1] Aston Univ, Dept Mech Biomed & Design Engn, Aston St, Birmingham B4 7ET, W Midlands, England
[2] Aston Univ, Energy & Bioprod Res Inst EBRI, Aston St, Birmingham B4 7ET, W Midlands, England
关键词
Electric vehicles; Energy consumption; Ambient temperature; Heat load; Real-world conditions; BATTERY THERMAL MANAGEMENT; RANGE; EFFICIENCY; IMPACTS; LIFE;
D O I
10.1016/j.energy.2021.122028
中图分类号
O414.1 [热力学];
学科分类号
摘要
This work evaluates the impacts of ambient temperature and trip characteristics on the energy consumption of an electric vehicle (EV) during road tests. The trip characteristics are here defined by the driving distance, stop time percentage and average vehicle speed. The analysis uses data collected from real-world driving of an EV in one of the most populous metropolitan regions in the UK for almost four years, using a dedicated monitoring software for real-time vehicle data processing. The results reveal that the EV specific energy consumption (SEC) increases under operation at low temperature, also showing a larger scatter. Significant changes in SEC are linked to auxiliary energy demand and trip characteristics, especially under cold temperatures. Trips complying with a real-world driving test procedure produced lower SEC than random trips at cold temperatures but showed closed values at moderate temperatures. At both cold and moderate temperature conditions the EV presented lower SEC for urban driving, in comparison with rural and motorway operation, confirming its adequacy for application in metropolitan areas. Urban EV operation at low temperatures from 0 degrees C to 15 degrees C has a trip range 28% lower than driving at moderate temperatures from 15 degrees C to 25 degrees C. (C) 2021 Elsevier Ltd. All rights reserved.
引用
收藏
页数:9
相关论文
共 43 条
[1]   Configuration, design, and optimization of air-cooled battery thermal management system for electric vehicles: A review [J].
Akinlabi, A. Hakeem ;
Solyali, Davut .
RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2020, 125
[2]   Indirect methodologies to estimate energy use in vehicles: Application to battery electric vehicles [J].
Alves, J. ;
Baptista, P. C. ;
Goncalves, G. A. ;
Duarte, G. O. .
ENERGY CONVERSION AND MANAGEMENT, 2016, 124 :116-129
[3]  
[Anonymous], OFFICIAL J EUROPEAN, P22
[4]   Sensitivity analysis for energy demand estimation of electric vehicles [J].
Asamer, Johannes ;
Graser, Anita ;
Heilmann, Bernhard ;
Ruthmair, Mario .
TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT, 2016, 46 :182-199
[5]   Development of driving cycles for electric vehicles in the context of the city of Florence [J].
Berzi, Lorenzo ;
Delogu, Massimo ;
Pierini, Marco .
TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT, 2016, 47 :299-322
[6]   Development of a driving cycle to evaluate the energy economy of electric vehicles in urban areas [J].
Brady, John ;
O'Mahony, Margaret .
APPLIED ENERGY, 2016, 177 :165-178
[7]  
Calearo L, 2019, 2019 54TH INTERNATIONAL UNIVERSITIES POWER ENGINEERING CONFERENCE (UPEC), DOI 10.1109/upec.2019.8893474
[8]   Winter Happens: The Effect of Ambient Temperature on the Travel Range of Electric Vehicles [J].
Delos Reyes, Jose Rizalino M. ;
Parsons, Robert V. ;
Hoemsen, Ray .
IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2016, 65 (06) :4016-4022
[9]   Influence of driving style, infrastructure, weather and traffic on electric vehicle performance [J].
Donkers, Alex ;
Yang, Dujuan ;
Viktorovic, Milos .
TRANSPORTATION RESEARCH PART D-TRANSPORT AND ENVIRONMENT, 2020, 88
[10]  
Dost P, 2015, 2015 INTERNATIONAL CONFERENCE ON ELECTRICAL SYSTEMS FOR AIRCRAFT, RAILWAY, SHIP PROPULSION AND ROAD VEHICLES (ESARS)