Multiobjective Optimization of Nonlinear Active Suspension System with Time-Delayed Feedback

Considering the nonlinear properties of spring and damping of suspension, a quarter-car model with time-delayed control is established. The Routh–Hurwitz stability criterion and stability switching method are used to analyze the stability of the system and obtain the stability region diagram. The mu...

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Main Authors: Su-Juan Shao, Dong Jing, Chuan-Bo Ren
Format: Article
Language:English
Published: Hindawi Limited 2020-01-01
Series:Mathematical Problems in Engineering
Online Access:http://dx.doi.org/10.1155/2020/9526359
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spelling doaj-3989edecee2049e39bd6e622279742a82020-11-25T04:09:57ZengHindawi LimitedMathematical Problems in Engineering1024-123X1563-51472020-01-01202010.1155/2020/95263599526359Multiobjective Optimization of Nonlinear Active Suspension System with Time-Delayed FeedbackSu-Juan Shao0Dong Jing1Chuan-Bo Ren2School of Mechanical Engineering, Shandong University of Technology, Zibo, Shandong, ChinaSchool of Transportation and Vehicle Engineering, Shandong University of Technology, Zibo, Shandong, ChinaSchool of Transportation and Vehicle Engineering, Shandong University of Technology, Zibo, Shandong, ChinaConsidering the nonlinear properties of spring and damping of suspension, a quarter-car model with time-delayed control is established. The Routh–Hurwitz stability criterion and stability switching method are used to analyze the stability of the system and obtain the stability region diagram. The multiobjective optimization function is established by considering the ride comfort, driving safety, and handling stability. The optimal control parameters are obtained by the optimization and simulation of the system under harmonic excitation and random excitation. In addition, the responses of the active suspension system with optimal time-delay control and the passive suspension system without control are compared. The results show that the active suspension system with time-delay displacement feedback control can reduce the vibration of the system, and there is an optimal feedback parameter combination to optimize the vehicle running state. The design of multiobjective function optimization proposed in this paper can improve ride comfort, driving safety, and handling stability and provide guidance for comprehensively improving vehicle performance.http://dx.doi.org/10.1155/2020/9526359
collection DOAJ
language English
format Article
sources DOAJ
author Su-Juan Shao
Dong Jing
Chuan-Bo Ren
spellingShingle Su-Juan Shao
Dong Jing
Chuan-Bo Ren
Multiobjective Optimization of Nonlinear Active Suspension System with Time-Delayed Feedback
Mathematical Problems in Engineering
author_facet Su-Juan Shao
Dong Jing
Chuan-Bo Ren
author_sort Su-Juan Shao
title Multiobjective Optimization of Nonlinear Active Suspension System with Time-Delayed Feedback
title_short Multiobjective Optimization of Nonlinear Active Suspension System with Time-Delayed Feedback
title_full Multiobjective Optimization of Nonlinear Active Suspension System with Time-Delayed Feedback
title_fullStr Multiobjective Optimization of Nonlinear Active Suspension System with Time-Delayed Feedback
title_full_unstemmed Multiobjective Optimization of Nonlinear Active Suspension System with Time-Delayed Feedback
title_sort multiobjective optimization of nonlinear active suspension system with time-delayed feedback
publisher Hindawi Limited
series Mathematical Problems in Engineering
issn 1024-123X
1563-5147
publishDate 2020-01-01
description Considering the nonlinear properties of spring and damping of suspension, a quarter-car model with time-delayed control is established. The Routh–Hurwitz stability criterion and stability switching method are used to analyze the stability of the system and obtain the stability region diagram. The multiobjective optimization function is established by considering the ride comfort, driving safety, and handling stability. The optimal control parameters are obtained by the optimization and simulation of the system under harmonic excitation and random excitation. In addition, the responses of the active suspension system with optimal time-delay control and the passive suspension system without control are compared. The results show that the active suspension system with time-delay displacement feedback control can reduce the vibration of the system, and there is an optimal feedback parameter combination to optimize the vehicle running state. The design of multiobjective function optimization proposed in this paper can improve ride comfort, driving safety, and handling stability and provide guidance for comprehensively improving vehicle performance.
url http://dx.doi.org/10.1155/2020/9526359
work_keys_str_mv AT sujuanshao multiobjectiveoptimizationofnonlinearactivesuspensionsystemwithtimedelayedfeedback
AT dongjing multiobjectiveoptimizationofnonlinearactivesuspensionsystemwithtimedelayedfeedback
AT chuanboren multiobjectiveoptimizationofnonlinearactivesuspensionsystemwithtimedelayedfeedback
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