Adaptive Neuro-fuzzy Sliding Mode Control Based Strategy for Active Suspension Control

S. Qamar, Tariq Khan, L. Khan
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引用次数: 6

Abstract

Suspension system of a vehicle is used to minimize the effect of different road disturbances on ride comfort and to improve the vehicle control. A passive suspension system responds only to the deflection of the strut. While, the semi active system setup can dissipate energy from the system at an appropriate time, in a way or amount that is right for all the variables in the system. The main objective of this work is to design an efficient active suspension control for full car model with 8-Degrees of Freedom (DOF) using adaptive soft computing technique. So, in this study, an Adaptive Neuro-Fuzzy based Sliding Mode Control (ANFSMC) is used for full car active suspension system to improve the ride comfort and vehicle stability. ANFSMC is adapted in such a way as to estimate online the unknown dynamics and provide feedback response. The detailed mathematical model of ANFSMC has been developed and successfully applied to a full car model. The robustness of the presented ANFSMC has been proved on the basis of different performance indices. The analysis of MATLAB/SMULINK based simulation results reveals that the proposed ANFSMC has better ride comfort and vehicle handling as compared to passive or semi-active suspension systems.
基于自适应神经模糊滑模控制的主动悬架控制策略
车辆的悬架系统是为了减小各种道路扰动对乘坐舒适性的影响,提高车辆的操控性。被动悬架系统只对支柱的偏转作出反应。然而,半主动系统设置可以在适当的时间以适合系统中所有变量的方式或数量从系统中耗散能量。本文的主要目的是利用自适应软计算技术设计一种有效的8自由度全车主动悬架控制系统。因此,本研究将基于自适应神经模糊的滑模控制(ANFSMC)应用于整车主动悬架系统,以提高整车的平顺性和稳定性。ANFSMC可以在线估计未知动态并提供反馈响应。建立了ANFSMC的详细数学模型,并成功地应用于整车模型。基于不同的性能指标,证明了所提出的ANFSMC的鲁棒性。基于MATLAB/SMULINK的仿真分析结果表明,与被动或半主动悬架系统相比,所提出的ANFSMC具有更好的乘坐舒适性和车辆操控性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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