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Vehicle System Dynamics
International Journal of Vehicle Mechanics and Mobility
Volume 62, 2024 - Issue 1
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Research Articles

Coordinated torque distribution method of distributed drive electric vehicle to reduce control intervention sense

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Pages 198-221 | Received 20 Jul 2021, Accepted 19 Oct 2022, Published online: 12 Apr 2023

References

  • Rajendran S, Spurgeon SK, Tsampardoukas G, et al. Estimation of road frictional force and wheel slip for effective antilock braking system (ABS) control. Int J Robust Nonlinear Control. 2019;29(3):736–765.
  • Zhao HY, Chen WX, Zhao JY, et al. Modular integrated longitudinal, lateral, and vertical vehicle stability control for distributed electric vehicles. IEEE Trans Veh Technol. 2019;68(2):1327–1338.
  • Xu W, Chen H, Zhao HY, et al. Torque optimization control for electric vehicles with four in-wheel motors equipped with regenerative braking system. Mechatronics (Oxf). 2019;57:95–108.
  • Zhao YQ, Deng HF, Li Y, et al. Coordinated control of stability and economy based on torque distribution of distributed drive electric vehicle. Proc Inst Mech Eng Part D J Automob Eng. 2020;234(6):1792–1806.
  • Zhang L, Wu Y, Li BY, et al. A novel manoeuvre stability controller based on vehicle state prediction and intellectual braking torque distribution. Proc Inst Mech Eng Part D J Automob Eng. 2020;234(1):136–151.
  • Li HQ, Zhao YQ, Lin F, et al. Integrated yaw and rollover control based on differential braking for off-road vehicles with mechanical elastic wheel. J Cen South Univ. 2019;26(9):2354–2367.
  • Zhang L, Yu LY, Wang ZZ, et al. All-wheel braking force allocation during a braking-in-turn maneuver for vehicles with the brake-by-wire system considering braking efficiency and stability. I IEEE Trans Veh Technol. 2016;65(6):4752–4767.
  • Zhang XD, Göhlich D, Zheng W. Karush–Kuhn–Tuckert based global optimization algorithm design for solving stability torque allocation of distributed drive electric vehicles. J Franklin Inst. 2017;354(18):8134–8155.
  • Yim S, Kim S, Yun H. Coordinated control with electronic stability control and active front steering using the optimum yaw moment distribution under a lateral force constraint on the active front steering. Proc Inst Mech Eng Part D J Automob Eng. 2016;230(5):581–592.
  • Lenzo B, Zanchetta M, Sorniotti A, et al. Yaw rate and sideslip angle control through single input single output direct yaw moment control. IEEE Trans Control Syst Technol. 2020;29(1):124–139.
  • Oh K, Joa E, Lee J, et al. Yaw stability control of 4wd vehicles based on model predictive torque vectoring with physical constraints. Int J Automot Technol. 2019;20(5):923–932.
  • Zhang L, Ding H, Huang Y, et al. An analytical approach to improve vehicle maneuverability via torque vectoring control: theoretical study and experimental validation. IEEE Trans Veh Technol. 2019;68(5):4514–4526.
  • Nahidi A, Kasaiezadeh A, Khosravani S, et al. Modular integrated longitudinal and lateral vehicle stability control for electric vehicles. Mechatronics (Oxf). 2017;44:60–70.
  • Li B, Goodarzi A, Khajepour A, et al. An optimal torque distribution control strategy for four-independent wheel drive electric vehicles. Veh Syst Dyn. 2015;53(8):1172–1189.
  • Zhai L, Sun T, Wang J. Electronic stability control based on motor driving and braking torque distribution for a four in-wheel motor drive electric vehicle. IEEE Trans Veh Technol. 2016;65(6):4726–4739.
  • Jalali M, Khajepour A, Chen S, et al. Integrated stability and traction control for electric vehicles using model predictive control. Control Eng Practice. 2016;54:256–266.
  • Mokhiamar O, Abe M. How the four wheels should share forces in an optimum cooperative chassis control. Control Eng Pract. 2006;14(3):295–304.
  • Huang YW, Chen Y. Vehicle lateral stability control based on shiftable stability regions and dynamic margins. IEEE Trans Veh Technol. 2020;69(12):14727–14738.
  • Wang JN, Luo Z, Wang Y, et al. Coordination control of differential drive assist steering and vehicle stability control for four-wheel-independent-drive EV. IEEE Trans Veh Technol. 2018;67(12):11453–11467.
  • Mirzaei M, Mirzaeinejad H. Fuzzy scheduled optimal control of integrated vehicle braking and steering systems. IEEE-ASME Trans Mechatron. 2017;22(5):2369–2379.
  • Guo N, Zhang X, Zou Y, et al. A supervisory control strategy of distributed drive electric vehicles for coordinating handling, lateral stability, and energy efficiency. IEEE T Transp Electr. 2021;7(4):2488–2504.
  • Mousavinejad E, Han QL, Yang FW, et al. Integrated control of ground vehicles dynamics via advanced terminal sliding mode control. Veh Syst Dyn. 2017;55(2):268–294.
  • Wu XJ, Zhou B, Wen GI, et al. Intervention criterion and control research for active front steering with consideration of road adhesion. Veh Syst Dyn. 2018;56(4):553–578.
  • Zhao W, Fan F, Wang W. Non-linear partial least squares response surface method for structural reliability analysis. Reliab Eng Syst Saf. 2017;161:69–77.
  • Zhang ZY, Liu X, Huang CX, et al. Noise source identification for industrial sewing machines based on non-linear partial least squares regression model. Proc Inst Mech Eng Part C J Eng Mech. 2016;230(16):2817–2827.
  • Wold S, Sjöström M, Eriksson L. PLS-regression: a basic tool of chemometrics. Chemometrics Intell Lab Syst. 2001;58(2):109–130.
  • Imani Masouleh M, Limebeer DJN. Region of attraction analysis for nonlinear vehicle lateral dynamics using sum-of-squares programming. Veh Syst Dyn. 2018;56(7):1118–1138.
  • Ma X, Wong PK, Zhao J, et al. Cornering stability control for vehicles with active front steering system using TS fuzzy based sliding mode control strategy. Mech Syst Signal Process. 2019;125:347–364.
  • Taghavifar H. Integrated control of vehicle stability by nonlinear observer-based exponential-like sliding mode neural network system. Proc Inst Mech Eng Part D J Automob Eng. 2021;235(14):3474–3486.
  • Pi DW, Chen N, Zhang BJ. Experimental demonstration of a vehicle stability control system in a split-µ manoeuvre. Proc Inst Mech Eng Part D J Automob Eng. 2011;225(3):305–317.
  • Li SE, Chen HL, Li RJ, et al. Predictive lateral control to stabilise highly automated vehicles at tire-road friction limits. Veh Syst Dyn. 2020;58(5):768–786.
  • Cheng S, Li L, Yan BJ, et al. Simultaneous estimation of tire side-slip angle and lateral tire force for vehicle lateral stability control. Mech Syst Signal Process. 2019;132:168–182.
  • Huang CX, Lei F, Han X, et al. An improved adaptive unscented Kalman filter for estimating the states of in-wheel-motored electric vehicle. Int J Adapt Control Signal Process. 2019;33(11):1676–1694.
  • Song R, Fang YC. Vehicle state estimation for INS/GPS aided by sensors fusion and SCKF-based algorithm. Mech Syst Signal Process. 2021;150:107315.
  • Kim K, Lee JM, Lee IB. A novel multivariate regression approach based on kernel partial least squares with orthogonal signal correction. Chemometrics Intell Lab Syst. 2005;79(1-2):22–30.
  • Rodríguez AJ, Sanjurjo E, Pastorino R, et al. State, parameter and input observers based on multibody models and Kalman filters for vehicle dynamics. Mech Syst Signal Process. 2021;155:107544.
  • Pu Z, Liu C, Shi X, et al. Road surface friction prediction using long short-term memory neural network based on historical data. J Intell Transport S. 2021;26(1):34–45.

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