Force Controller Design for Active Suspension by Using Genetic Algorithms and Fuzzy Control
博士 === 國立清華大學 === 動力機械工程學系 === 90 === Control algorithms are developed for force control in an active vehicle suspension design using genetic algorithms with both quarter car and half car models. The main function of active suspension is to support the vehicle body and isolates the road u...
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ndltd-TW-090NTHU03111252015-10-13T10:34:06Z http://ndltd.ncl.edu.tw/handle/06530629528957191988 Force Controller Design for Active Suspension by Using Genetic Algorithms and Fuzzy Control 應用遺傳演算法與模糊控制於主動懸架系統之力量控制器設計 Yon-Ji Tsao 曹永智 博士 國立清華大學 動力機械工程學系 90 Control algorithms are developed for force control in an active vehicle suspension design using genetic algorithms with both quarter car and half car models. The main function of active suspension is to support the vehicle body and isolates the road unevenness to provide ride comfort. Besides, the other important objective is to maintain the contact between tire and road and to minimize the variation of tire deflection for handling control. In this study, force cancellation, virtual damper, skyhook damper, and road-following concepts are proposed to design the force controller for achieving better ride and handling quality. Furthermore, a new approach incorporates the constraints of maximum suspension strokes in the objective function to evaluate the compactness of the suspension working space, as opposed to the traditional integral quadratic form of suspension displacement. Genetic algorithms are employed to obtain a more effective search for optimum control parameters. In addition, a nonlinear model is introduced and a fuzzy control scheme is proposed to deal with the nonlinear tire characteristic, tire deflection limits, and suspension stroke limitations. Computer simulations are performed to verify the proposed control scheme. It is shown both ride comfort and handling quality are greatly improved without exceeding the suspension stroke constraints. Rongshun Chen Edge Chu Yeh 陳榮順 葉莒 2002 學位論文 ; thesis 94 en_US |
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博士 === 國立清華大學 === 動力機械工程學系 === 90 === Control algorithms are developed for force control in an active vehicle suspension design using genetic algorithms with both quarter car and half car models. The main function of active suspension is to support the vehicle body and isolates the road unevenness to provide ride comfort. Besides, the other important objective is to maintain the contact between tire and road and to minimize the variation of tire deflection for handling control. In this study, force cancellation, virtual damper, skyhook damper, and road-following concepts are proposed to design the force controller for achieving better ride and handling quality. Furthermore, a new approach incorporates the constraints of maximum suspension strokes in the objective function to evaluate the compactness of the suspension working space, as opposed to the traditional integral quadratic form of suspension displacement. Genetic algorithms are employed to obtain a more effective search for optimum control parameters. In addition, a nonlinear model is introduced and a fuzzy control scheme is proposed to deal with the nonlinear tire characteristic, tire deflection limits, and suspension stroke limitations. Computer simulations are performed to verify the proposed control scheme. It is shown both ride comfort and handling quality are greatly improved without exceeding the suspension stroke constraints.
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author2 |
Rongshun Chen |
author_facet |
Rongshun Chen Yon-Ji Tsao 曹永智 |
author |
Yon-Ji Tsao 曹永智 |
spellingShingle |
Yon-Ji Tsao 曹永智 Force Controller Design for Active Suspension by Using Genetic Algorithms and Fuzzy Control |
author_sort |
Yon-Ji Tsao |
title |
Force Controller Design for Active Suspension by Using Genetic Algorithms and Fuzzy Control |
title_short |
Force Controller Design for Active Suspension by Using Genetic Algorithms and Fuzzy Control |
title_full |
Force Controller Design for Active Suspension by Using Genetic Algorithms and Fuzzy Control |
title_fullStr |
Force Controller Design for Active Suspension by Using Genetic Algorithms and Fuzzy Control |
title_full_unstemmed |
Force Controller Design for Active Suspension by Using Genetic Algorithms and Fuzzy Control |
title_sort |
force controller design for active suspension by using genetic algorithms and fuzzy control |
publishDate |
2002 |
url |
http://ndltd.ncl.edu.tw/handle/06530629528957191988 |
work_keys_str_mv |
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