Robust Control with Uncertain Disturbances for Vehicle Drift Motions

Professor drivers, including racing drivers, can drive cars to achieve drift motions by taking control of the steering angle in high tire slip ratios, which provides a way to improve the driving safety of autonomous vehicles. The existing studies can be divided into two kinds based on analysis metho...

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Main Authors: Dongxin Xu, Guoye Wang, Longtao Qu, Chang Ge
Format: Article
Language:English
Published: MDPI AG 2021-05-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/11/11/4917
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spelling doaj-5628c0a0db64446f8463c5adab536ec52021-06-01T01:16:52ZengMDPI AGApplied Sciences2076-34172021-05-01114917491710.3390/app11114917Robust Control with Uncertain Disturbances for Vehicle Drift MotionsDongxin Xu0Guoye Wang1Longtao Qu2Chang Ge3College of Engineering, China Agricultural University, Beijing 100083, ChinaCollege of Engineering, China Agricultural University, Beijing 100083, ChinaCollege of Engineering, China Agricultural University, Beijing 100083, ChinaCollege of Engineering, China Agricultural University, Beijing 100083, ChinaProfessor drivers, including racing drivers, can drive cars to achieve drift motions by taking control of the steering angle in high tire slip ratios, which provides a way to improve the driving safety of autonomous vehicles. The existing studies can be divided into two kinds based on analysis methods, and the theory-based is chosen in this study. Because the recent theory based is most applied for planar models with neglect of the rollover accident risk, the nonlinear vehicle model is established by considering longitudinal, lateral, roll, and yaw motions and rolling safety with the nonlinear tire model UniTire. The drift motion mechanism is analyzed in steady and transient states to obtain drift motion conditions, including the velocity limitation and the relationship between sideslip angle and yaw rate, and vehicle main status parameters including the velocity, side-slip angle and yaw rate in drift conditions. The state-feedback controller is designed based on robust theory and LMI (linear matrix inequation) with uncertain disturbances to realize circle motions in drift conditions. The designed controller in simulations realizes drift circle motions aiming at analyzed status target values by matching the front-wheel steering angle with saturated tire forces, which satisfies the Lyapunov stability with robustness. Robust control in drift conditions solves the problem of how to control vehicles to perform drift motions with uncertain disturbances and improves the driving safety of autonomous vehicles.https://www.mdpi.com/2076-3417/11/11/4917vehicle drift motionmotion mechanism analysisrobust control
collection DOAJ
language English
format Article
sources DOAJ
author Dongxin Xu
Guoye Wang
Longtao Qu
Chang Ge
spellingShingle Dongxin Xu
Guoye Wang
Longtao Qu
Chang Ge
Robust Control with Uncertain Disturbances for Vehicle Drift Motions
Applied Sciences
vehicle drift motion
motion mechanism analysis
robust control
author_facet Dongxin Xu
Guoye Wang
Longtao Qu
Chang Ge
author_sort Dongxin Xu
title Robust Control with Uncertain Disturbances for Vehicle Drift Motions
title_short Robust Control with Uncertain Disturbances for Vehicle Drift Motions
title_full Robust Control with Uncertain Disturbances for Vehicle Drift Motions
title_fullStr Robust Control with Uncertain Disturbances for Vehicle Drift Motions
title_full_unstemmed Robust Control with Uncertain Disturbances for Vehicle Drift Motions
title_sort robust control with uncertain disturbances for vehicle drift motions
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2021-05-01
description Professor drivers, including racing drivers, can drive cars to achieve drift motions by taking control of the steering angle in high tire slip ratios, which provides a way to improve the driving safety of autonomous vehicles. The existing studies can be divided into two kinds based on analysis methods, and the theory-based is chosen in this study. Because the recent theory based is most applied for planar models with neglect of the rollover accident risk, the nonlinear vehicle model is established by considering longitudinal, lateral, roll, and yaw motions and rolling safety with the nonlinear tire model UniTire. The drift motion mechanism is analyzed in steady and transient states to obtain drift motion conditions, including the velocity limitation and the relationship between sideslip angle and yaw rate, and vehicle main status parameters including the velocity, side-slip angle and yaw rate in drift conditions. The state-feedback controller is designed based on robust theory and LMI (linear matrix inequation) with uncertain disturbances to realize circle motions in drift conditions. The designed controller in simulations realizes drift circle motions aiming at analyzed status target values by matching the front-wheel steering angle with saturated tire forces, which satisfies the Lyapunov stability with robustness. Robust control in drift conditions solves the problem of how to control vehicles to perform drift motions with uncertain disturbances and improves the driving safety of autonomous vehicles.
topic vehicle drift motion
motion mechanism analysis
robust control
url https://www.mdpi.com/2076-3417/11/11/4917
work_keys_str_mv AT dongxinxu robustcontrolwithuncertaindisturbancesforvehicledriftmotions
AT guoyewang robustcontrolwithuncertaindisturbancesforvehicledriftmotions
AT longtaoqu robustcontrolwithuncertaindisturbancesforvehicledriftmotions
AT changge robustcontrolwithuncertaindisturbancesforvehicledriftmotions
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