Analytical design of PID controller for enhancing ride comfort of active vehicle suspension system

Truong Nguyen Luan Vu, Do Van Dung, N. V. Trang, P. T. Hai
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引用次数: 5

Abstract

In this paper, a new design of proportional-integral-derivative (PID) controller for the active vehicle suspension system (AVSS) of a quarter car model is proposed on the basis of the well-known Internal Model Control (IMC) theory in order to compromise the two conflicting criteria between the passenger ride comfort and road handling. By using the given mathematical ordinary differential equations (ODEs) and state-space matrix expression in t-domain via the kinematic and dynamic of a quarter two degrees of freedom model, the transfer function is firstly established for its model and the proposed AVSS based PID control is then systematically introduced for enhancing the ride comfort. Moreover, the computer simulation model of the passive and active suspension systems is established for the purpose of having a fair comparison. A various kinds of the road input signals are selected for testing the systems, such as unit step, sine wave, and white noise signals. The simulation results indicate that the performance of proposed AVSS has the significantly improved in terms of reducing the peak overshoot of sprung mass displacement and sprung mass acceleration in compared with the other traditional passive suspension systems.
提高车辆主动悬架平顺性的PID控制器解析设计
针对四分之一汽车主动悬架系统(AVSS),基于内模控制(IMC)理论,提出了一种新的比例-积分-导数(PID)控制器设计,以折衷乘客乘坐舒适性和道路操控性这两个相互冲突的准则。利用给定的数学常微分方程(ODEs)和t域状态空间矩阵表达式,通过四分之一二自由度模型的运动学和动力学,首先建立了模型的传递函数,然后系统地介绍了基于AVSS的PID控制,以提高平顺性。并建立了被动悬架与主动悬架的计算机仿真模型,以便进行比较。选择各种道路输入信号进行系统测试,如单位阶跃信号、正弦波信号和白噪声信号。仿真结果表明,与其他传统被动悬架系统相比,该系统在减小簧载质量位移和簧载质量加速度峰值超调量方面有显著改善。
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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