Seasonal effects on electric vehicle energy consumption and driving range: A case study on personal, taxi, and ridesharing vehicles

被引:136
|
作者
Hao, Xu [1 ]
Wang, Hewu [1 ,2 ]
Lin, Zhenhong [3 ]
Ouyang, Minggao [1 ]
机构
[1] Tsinghua Univ, State Key Lab Automot Safety & Energy, Beijing 100084, Peoples R China
[2] Tsinghua Univ, China Automot Energy Res Ctr, Beijing 100084, Peoples R China
[3] Oak Ridge Natl Lab, Natl Transportat Res Ctr, Knoxville, TN 37932 USA
关键词
BEV; Energy consumption; Travel patterns; Charging patterns; Seasonal variation; Vehicle applications; THERMAL MANAGEMENT; POWER BATTERY; HYBRID; TEMPERATURE; PERFORMANCE; EMISSIONS; PATTERNS;
D O I
10.1016/j.jclepro.2019.119403
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
The variation in BEV energy consumption and driving range under different weather and driving conditions can affect the usefulness and consumer acceptance of these vehicles. Thus, there is a need to better understand and quantify seasonal factors that affect consumption and range under real-world driving conditions. In this paper, a dataset representing the real-world driving activity of 197 BEVs of the same model recorded over 12 months at a polling frequency of 0.1 Hz is analyzed to estimate BEV performance across different driving applications (personal driving, taxi operation, and ridesharing) and seasons (spring/autumn, summer, and winter). The results show that the electricity consumption, travel patterns, and charging patterns of BEVs vary significantly by both vehicle application and season. For example, BEV models with a range of 160 km, recharged every 1.6 days on average, can meet most trip demands of personal vehicles. However, the same BEV model when used for ridesharing or taxi purposes, is driven much more and recharged more frequently. The results also show that actual BEV electricity consumption (EC) differs significantly from the consumption predicted by the New European Driving Cycle (NEDC) test, with real-world EC being 7%-10% higher than predicted by the NEDC test cycle. Furthermore, the real-world range of personal-use BEVs in winter is only 64% of the NEDC-estimated range. The study found that, when the ambient temperature is lower than 10 degrees C, electricity consumption increases 2.4 kWh/100 km for every 5 degrees C decrease in temperature. When it is higher than 28 degrees C, EC increases 2.3 kWh/100 km for every 5 degrees C increase in temperature. These findings imply that manufacturers should design BEVs with application-appropriate driving ranges and make R&D investments for improving battery performance in cold environments. (C) 2019 Elsevier Ltd. All rights reserved.
引用
收藏
页数:13
相关论文
共 50 条
  • [31] Analyzing the Impact of Roadmap and Vehicle Features on Electric Vehicles Energy Consumption
    Sanguesa, Julio A.
    Garrido, Piedad
    Martinez, Francisco J.
    Marquez-Barja, Johann M.
    IEEE ACCESS, 2021, 9 (09): : 61475 - 61488
  • [32] Vehicle Acceleration and Speed as Factors Determining Energy Consumption in Electric Vehicles
    Kozlowski, Edward
    Wisniowski, Piotr
    Gis, Maciej
    Zimakowska-Laskowska, Magdalena
    Borucka, Anna
    ENERGIES, 2024, 17 (16)
  • [33] Extended Range Electric Vehicle With Driving Behavior Estimation in Energy Management
    Vatanparvar, Korosh
    Faezi, Sina
    Burago, Igor
    Levorato, Marco
    Al Faruque, Mohammad Abdullah
    IEEE TRANSACTIONS ON SMART GRID, 2019, 10 (03) : 2959 - 2968
  • [34] High-Fidelity Electric Vehicle Energy Consumption Modelling and Investigation of Factors in Driving on Energy Consumption
    Kocaarslan, Ilhan
    Zehir, Mustafa Alparslan
    Uzun, Ege
    Uzun, Enes Can
    Korkmaz, Mustafa Emin
    Cakiroglu, Yigit
    2022 IEEE 4TH GLOBAL POWER, ENERGY AND COMMUNICATION CONFERENCE (IEEE GPECOM2022), 2022, : 227 - 231
  • [35] Conditions for electric vehicle taxi: A case study in the Greater Stockholm region
    Hagman, Jens
    Langbroek, Joram H. M.
    INTERNATIONAL JOURNAL OF SUSTAINABLE TRANSPORTATION, 2019, 13 (06) : 450 - 459
  • [36] A novel Eco-Driving Application to Reduce Energy Consumption of Electric Vehicles
    Frank, Raphael
    Castignani, German
    Schmitz, Raoul
    Engel, Thomas
    2013 INTERNATIONAL CONFERENCE ON CONNECTED VEHICLES AND EXPO (ICCVE), 2013, : 283 - 288
  • [37] Study on the evaluation of energy consumption economy for electric vehicles
    School of Mechanical and Vehicular Engineering, Beijing Institute of Technology, Beijing 100081, China
    Gaojishu Tongxin, 2007, 2 (171-174): : 171 - 174
  • [38] The relative importance of price and driving range on electric vehicle adoption: Los Angeles case study
    Adepetu, Adedamola
    Keshav, Srinivasan
    TRANSPORTATION, 2017, 44 (02) : 353 - 373
  • [39] Testing energy efficiency and driving range of electric vehicles in relation to gear selection
    Wager, Guido
    McHenry, Mark P.
    Whale, Jonathan
    Braeunl, Thomas
    RENEWABLE ENERGY, 2014, 62 : 303 - 312
  • [40] Probabilistic Prediction of Energy Demand and Driving Range for Electric Vehicles with Federated Learning
    Thorgeirsson A.T.
    Scheubner S.
    Funfgeld S.
    Gauterin F.
    IEEE Open Journal of Vehicular Technology, 2021, 2 : 151 - 161