Performance comparison of electric-vehicle drivetrain architectures from a vehicle dynamics perspective

被引:4
|
作者
Bayar, Kerem [1 ]
机构
[1] Orta Dogu Tekn Univ, TR-06800 Ankara, Turkey
关键词
Vehicle dynamics; electric-vehicle drivetrain architecture; anti-lock braking system; vehicle stability control; IN-WHEEL-MOTORS; SYSTEMS; DESIGN;
D O I
10.1177/0954407019867491
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Recent electric vehicle studies in literature utilize electric motors within an anti-lock braking system, traction-control system, and/or vehicle-stability controller scheme. Electric motors are used as hub motors, on-board motors, or axle motors prior to the differential. This has led to the need for comparing these different drivetrain architectures with each other from a vehicle dynamics standpoint. With this background in place, using MATLAB simulations, these three drivetrain architectures are compared with each other in this study. In anti-lock braking system and vehicle-stability controller simulations, different control approaches are utilized to blend the electric motor torque with hydraulic brake torque; motor ABS, torque decomposition, and optimal slip-tracking control strategies. The results for the anti-lock braking system simulations can be summarized as follows: (1) Motor ABS strategy improves the stopping distance compared to the standard anti-lock braking system. (2) In case the motors are not solely capable of providing the required braking torque, torque decomposition strategy becomes a good solution. (3) Optimal slip-tracking control strategy improves the stopping distance remarkably compared to the standard anti-lock braking system, motor anti-lock braking system, and torque decomposition strategies for all architectures. The vehicle-stability controller simulation results can be summarized as follows: (1) higher affective wheel inertia of the on-board and hub motor architecture dictates a higher need of wheel torque in order to generate the tire force required for the desired yaw rate tracking. A higher level of torque causes a higher level of tire slip. (2) Optimal slip-tracking control strategy reduces the tire slip trends drastically and distributes the traction/braking action to each tire with the control-allocation algorithm specifying the reference slip values. This reduces reference tire slip-tracking error and reduces vehicle sideslip angle. (3) Tire slip trends are lower with the hub motor architecture, compared to the other architectures, due to more precise slip control.
引用
收藏
页码:915 / 935
页数:21
相关论文
共 50 条
  • [31] Polymer selection and cell design for electric-vehicle supercapacitors
    Mastragostino, M
    Arbizzani, C
    Paraventi, R
    Zanelli, A
    [J]. JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2000, 147 (02) : 407 - 412
  • [32] The Design and Simulation of Electric-Vehicle Charger Control Strategy
    Sun Hongbo
    Zhao Gang
    [J]. MANUFACTURING SYSTEMS AND INDUSTRY APPLICATIONS, 2011, 267 : 941 - 946
  • [33] Understanding synergies between electric-vehicle market dynamics and sustainability: Case study of Colombia
    Lopez-Arboleda, Esteban
    Sarmiento, Alfonso T.
    Cardenas, Laura M.
    [J]. Sarmiento, Alfonso T. (alfonsosava@unisabana.edu.co), 2021, Elsevier Ltd (321)
  • [34] The Optimal Distribution of Electric-Vehicle Chargers across A City
    Liu, Chen
    Deng, Ke
    Li, Chaojie
    Li, Jianxin
    Li, Yanhua
    Luo, Jun
    [J]. 2016 IEEE 16TH INTERNATIONAL CONFERENCE ON DATA MINING (ICDM), 2016, : 261 - 270
  • [35] BATTERY DESIGN AND CELL TESTING FOR ELECTRIC-VEHICLE PROPULSION
    SCHERTZ, WW
    CHILENSKAS, AA
    KOLBA, VM
    [J]. IEEE TRANSACTIONS ON AEROSPACE AND ELECTRONIC SYSTEMS, 1975, 11 (05) : 951 - 951
  • [36] Electric-Vehicle Navigation System Based on Power Consumption
    Yang, Jyun-Yan
    Chou, Li-Der
    Chang, Yao-Jen
    [J]. IEEE TRANSACTIONS ON VEHICULAR TECHNOLOGY, 2016, 65 (08) : 5930 - 5943
  • [37] Understanding synergies between electric-vehicle market dynamics and sustainability: Case study of Colombia
    Lopez-Arboleda, Esteban
    Sarmiento, Alfonso T.
    Cardenas, Laura M.
    [J]. JOURNAL OF CLEANER PRODUCTION, 2021, 321
  • [38] Electric-Vehicle Routing Planning Based on the Law of Electric Energy Consumption
    Ding, Nan
    Yang, Jingshuai
    Han, Zhibin
    Hao, Jianming
    [J]. MATHEMATICS, 2022, 10 (17)
  • [39] Control Laws for the Emulation of an Electric Vehicle Drivetrain by Two Electric Machines
    Sehab, Rabia
    Tang Shanan
    [J]. 2013 9TH IEEE VEHICLE POWER AND PROPULSION CONFERENCE (VPPC), 2013, : 87 - 93
  • [40] Application of Three-Phase Unfolder in Electric Vehicle Drivetrain
    Chen, W. Warren
    Zane, Regan
    [J]. 2015 IEEE 16TH WORKSHOP ON CONTROL AND MODELING FOR POWER ELECTRONICS (COMPEL), 2015,