Scale simulation of battery performance for electric vehicles

被引:1
作者
Armenta-Déu C. [1 ]
Carriquiry J.P. [2 ]
机构
[1] Física Térmica y Electrónica, Facultad de Ciencias Físicas, Grupo de Energías Renovables, Department Estructura de la Materia, Universidad Complutense de Madrid, Madrid
[2] Facultad Ingeniería, Universidad de la República, Montevideo
关键词
Charge-discharge time prediction; Continuous/alternating current engines; Electric vehicle battery; Performance simulation; Real driving conditions;
D O I
10.1504/IJVSMT.2021.120567
中图分类号
学科分类号
摘要
This work simulates the performance of lithium batteries for electric vehicles under different charge-discharge rates. The simulation is based on scale factors for power, voltage and current, reproducing real operation conditions of an electric vehicle at the model scale. Most current driving modes have been analysed corresponding to discharge rates from 0.1 C to 0.37 C. The simulation is applied to determine charging time using charge power in real conditions, from 6.1 kW to 18.3 kW (0.1 C to 0.3 C). Driving conditions are obtained using equations for vehicle motion including all forces. Tests are run under two configurations, continuous and alternating current circuits, to reproduce the two types of engines that electric vehicles use. The simulation shows very good agreement in charge and discharge processes, with average deviation of 3% related to real conditions, and 1.6% between them, which proves the validity of the simulation process. Copyright © 2021 Inderscience Enterprises Ltd.
引用
收藏
页码:164 / 187
页数:23
相关论文
共 50 条
  • [21] Enabling accurate and fast large-scale battery simulation using only a 9-cell model with variance based parameters
    Fantham, T. L.
    Gladwin, D. T.
    [J]. JOURNAL OF ENERGY STORAGE, 2022, 54
  • [22] A Review on Dynamic Recycling of Electric Vehicle Battery: Disassembly and Echelon Utilization
    Xiao, Jinhua
    Jiang, Chengran
    Wang, Bo
    [J]. BATTERIES-BASEL, 2023, 9 (01):
  • [23] Thermal management system with nanofluids for electric vehicle battery cooling modules
    Wiriyasart, S.
    Hommalee, C.
    Sirikasemsuk, S.
    Prurapark, R.
    Naphon, P.
    [J]. CASE STUDIES IN THERMAL ENGINEERING, 2020, 18
  • [24] Electric Vehicles and the Burning Question: Reasons, Risks, Ramifications and Remedies—An Indian Perspective
    V. Kethareswaran
    Sanjay Moulik
    [J]. Fire Technology, 2023, 59 : 2189 - 2201
  • [25] An Accurate Activate Screw Detection Method for Automatic Electric Vehicle Battery Disassembly
    Li, Huaicheng
    Zhang, Hengwei
    Zhang, Yisheng
    Zhang, Shengmin
    Peng, Yanlong
    Wang, Zhigang
    Song, Huawei
    Chen, Ming
    [J]. BATTERIES-BASEL, 2023, 9 (03):
  • [26] Influence of operating conditions on the optimum design of electric vehicle battery cooling plates
    Jarrett, Anthony
    Kim, Il Yong
    [J]. JOURNAL OF POWER SOURCES, 2014, 245 : 644 - 655
  • [27] Design and Simulation of an Integrated PV Solar Electric System
    Atallah, Rita
    Singh, Pritpal
    [J]. 2017 IEEE GLOBAL HUMANITARIAN TECHNOLOGY CONFERENCE (GHTC), 2017, : 600 - 606
  • [28] Developments in environmental performance simulation
    Malkawi, AM
    [J]. AUTOMATION IN CONSTRUCTION, 2004, 13 (04) : 437 - 445
  • [29] Electric Vehicles and the Burning Question: Reasons, Risks, Ramifications and Remedies-An Indian Perspective
    Kethareswaran, V.
    Moulik, Sanjay
    [J]. FIRE TECHNOLOGY, 2023, 59 (05) : 2189 - 2201
  • [30] Electric Vehicle Li-ion Battery Evaluation based on Internal Resistance Analysis
    Ansean, David
    Gonzalez, Manuela
    Carlos Viera, Juan
    Carlos Alvarez, Juan
    Blanco, Cecilio
    Manuel Garcia, Victor
    [J]. 2014 IEEE VEHICLE POWER AND PROPULSION CONFERENCE (VPPC), 2014,