基于粒子群优化模糊比例积分派生控制器的横向板簧主动悬架振动控制装置

Junhong Zhang, Feiqi Long, Jiewei Lin, Xiaolong Zhu
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摘要

横向板簧(TLS)悬挂系统具有承载能力强、操纵稳定性好等优点,是厢式货车的理想选择。然而,其乘坐舒适性仍是一大挑战。本文研究并比较了半主动和主动控制策略对提高 TLS 悬挂系统驾乘舒适性的影响。首先,建立了 TLS 悬挂的四自由度(4-DOF)半车模型和多体动力学(MBD)模型。MBD 模型精度更高,可以描述 TLS 悬挂系统的中高频特性,如悬架偏移频率和车身垂直加速度(BVA)的频率响应函数。因此,本文基于带 TLS 悬架的 MBD 半车模型,提出了一种考虑左右悬架耦合的最优模糊 PID 主动控制策略。优化目标为 BVA、左右悬架动态挠度和左右车轮动态位移。积分绝对误差被用作评估标准。通过粒子群优化获得左右模糊 PID 控制器的参数。仿真结果表明,与传统的天钩半主动控制策略相比,粒子群优化模糊 PID 主动控制策略能有效控制 TLS 悬架的低频振动,抑制中频和高频振动特性。该技术为提高 TLS 悬挂的乘坐舒适性提供了参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Particle swarm optimized fuzzy proportional-integral-derivative controller-based transverse leaf spring active suspension for vibration control
The transverse leaf spring (TLS) suspensions are a promising option for van vehicles due to their high load-carrying capacity and excellent handling stability. However, its ride comfort remains a major challenge. This paper investigates and compares the effects of semi-active and active control strategies to enhance the ride comfort of TLS suspensions. Firstly, a four-degree-of-freedom (4-DOF) half-car model and a multi-body dynamics (MBD) model of the TLS suspensions are established. The MBD model has higher accuracy and can describe the medium and high frequency characteristics of the TLS suspensions, such as the suspension offset frequency and the frequency response function of the body vertical acceleration (BVA). Therefore, based on the MBD half-car model with TLS suspensions, this paper proposes an optimal fuzzy PID active control strategy considering the left and right suspension coupling. The optimization objectives are the BVA, the left and right suspensions dynamic deflection, and the left and right wheels dynamic displacement. The integral absolute error is used as the evaluation criterion. The left and right fuzzy PID controllers’ parameters are obtained through particle swarm optimization. Simulation results demonstrate that the particle swarm optimization fuzzy PID active control strategy effectively controls the low-frequency vibration of the TLS suspensions and suppresses the medium- and high-frequency vibration characteristics compared with the traditional skyhook semi-active control strategy. This technology provides a reference for improving the ride comfort of the TLS suspensions.
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