The Use of Adaptive Fuzzy-PID for Vibration Control in the Suspension System of a Railcar

D. Ilesanmi, Mpofu Khumbulani, A. Adefemi, Bello Kazeem
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引用次数: 2

Abstract

The use of classic and advance controls to minimize unwanted motions and vibrations in the railcar system is aimed at significant reduction in the vehicle body acceleration and suspension travel with increased rail holding ability. This study employs the use of the Fuzzy-PID control system for the control of the rail car suspension system. The modelling and intelligent control of the suspension system was done using the Fuzzy-logic PID system and simulated in the MATLAB 2018b environment. The equations of motion was generated from the free body diagram of the railcar suspension system and the overall equation was used an input into the Fuzzy-PID control system. The optimal gains of the PID was first obtained followed by the subsequent design of the Fuzzy-logic control with tuning abilities for the PID. Compared to other control systems employed, the results obtained showed that the Fuzzy-logic control system possesses significant control ability in ensuring the system recovers quickly from the any offset from the normal position triggered by the disturbances with minimal acceleration, vibration and displacement.
自适应模糊pid在轨道车辆悬架系统振动控制中的应用
使用经典和先进的控制系统来减少轨道车辆系统中不必要的运动和振动,旨在显著降低车身加速度和悬挂行程,同时增加轨道保持能力。本研究采用模糊pid控制系统对轨道车辆悬架系统进行控制。采用模糊逻辑PID系统对悬架系统进行建模和智能控制,并在MATLAB 2018b环境下进行仿真。由轨道车辆悬架系统的自由体图生成运动方程,并将整体方程作为模糊pid控制系统的输入。首先得到PID的最优增益,然后设计具有PID自整定能力的模糊逻辑控制。结果表明,与其他控制系统相比,模糊逻辑控制系统具有显著的控制能力,可以保证系统在最小的加速度、振动和位移干扰下从正常位置的任何偏移中快速恢复。
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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