Avoiding stick-slip limit cycle vibration in electric vehicle brake system via brake force distribution

被引:0
|
作者
Han, Qingzhen [1 ]
Chen, Dong [1 ]
Xu, Jing [1 ]
Zhu, Jiajun [1 ]
Wang, Jiajia [1 ]
机构
[1] Yangzhou Univ, Sch Mech Engn, Huayang Xi Rd 196, Yangzhou 225127, Peoples R China
关键词
Brake creep groan; stick-slip limit cycle; nonlinear vibration; avoidance; hybrid brake system; critical boundary; REGENERATIVE BRAKING; ENERGY RECOVERY; STABILITY; PAD;
D O I
10.1177/10775463241231348
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
Brake creep groan, a friction-induced nonlinear vibration in the brake system, has significantly contributed to the reduction of ride comfort. In order to mitigate brake creep groan, a brake force distribution strategy based on the stick-slip curve is proposed and examined. The critical boundary of the stick-slip limit cycle is determined and established as the constraint condition. Focusing on avoiding stick-slip limit cycle vibration, an adaptive particle swarm optimization method is employed to study the distribution of brake force between regenerative brake and friction brake, with energy recovery efficiency serving as the objective function. Four distinct operational conditions-NEDC, UDDS, WLTP, and FTP-are simulated. The results demonstrate that under these conditions, vibrations associated with the stick-slip limit cycle can be reduced by up to 23.596%, 15.368%, 15.342%, and 17.557%, respectively. Considering the peak power and peak torque of the drive motor, three regions can be identified: the region where stick-slip limit cycle vibration cannot be avoided, the region where avoidance efficiency increases with the rise in the drive motor's peak torque and peak power, and the region where avoidance efficiency remains constant despite increases in the drive motor's peak torque and peak power.
引用
收藏
页数:11
相关论文
共 29 条
  • [21] Online Estimation and Control Method of Optimal Slip Ratio for Vehicle with an Electric Power-Assisted Brake System
    Chen, Lei
    He, Yuchao
    Ma, Tangtang
    Zhong, Shengshi
    IEEE Access, 2024, 12 : 176961 - 176981
  • [22] Stick-Slip Characteristic Analysis of High-Speed Train Brake Systems: A Disc-Block Friction System with Different Friction Radii
    Lu, Changlin
    Wang, Quan
    Wang, Zhiwei
    Mo, Jiliang
    Zhu, Song
    Jin, Wenwei
    VEHICLES, 2023, 5 (01): : 41 - 54
  • [23] Vehicle stability control with regenerative braking and electronic brake force distribution for a four-wheel drive hybrid electric vehicle
    Kim, Donghyun
    Kim, Hyunsoo
    PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART D-JOURNAL OF AUTOMOBILE ENGINEERING, 2006, 220 (D6) : 683 - 693
  • [24] Nonlinear wheel-slip dynamics of battery electric vehicle for anti-lock brake system control by traction motor
    Qin Shi
    Shixuan Yuan
    Liang Chen
    Zejia He
    Zhihong Li
    Lin He
    Nonlinear Dynamics, 2023, 111 : 19841 - 19853
  • [25] Nonlinear wheel-slip dynamics of battery electric vehicle for anti-lock brake system control by traction motor
    Shi, Qin
    Yuan, Shixuan
    Chen, Liang
    He, Zejia
    Li, Zhihong
    He, Lin
    NONLINEAR DYNAMICS, 2023, 111 (21) : 19841 - 19853
  • [26] Design of brake force distribution model for front-and-rear-motor-drive electric vehicle based on radial basis function
    Sun B.
    Zhang T.
    Gao S.
    Ge W.
    Li B.
    Archives of Transport, 2018, 48 (04) : 87 - 98
  • [27] Control performance of an electrorheological valve based vehicle anti-lock brake system, considering the braking force distribution
    Choi, SB
    Lee, TH
    Lee, YS
    Han, MS
    SMART MATERIALS AND STRUCTURES, 2005, 14 (06) : 1483 - 1492
  • [28] Hopf-curve-based torque distribution strategy for avoiding limit cycle vibration in hybrid braking system model
    Han, Qingzhen
    Zhu, Lin
    Wang, Jiajia
    Chen, Dong
    INTERNATIONAL JOURNAL OF NON-LINEAR MECHANICS, 2023, 154
  • [29] Range extension control system for electric vehicle during acceleration and deceleration based on front and rear driving/braking force distribution considering slip ratio and motor loss
    Harada, Shingo
    Fujimoto, Hiroshi
    IEEJ Transactions on Industry Applications, 2014, 134 (03) : 268 - 275