反推
悬挂(拓扑)
控制理论(社会学)
补偿(心理学)
磁流变液
主动悬架
系列(地层学)
磁流变阻尼器
计算机科学
控制(管理)
控制工程
工程类
数学
执行机构
地质学
心理学
自适应控制
阻尼器
人工智能
纯数学
古生物学
同伦
精神分析
作者
Jiangqi Long,Zhe Kong,Jianhong Zhang
标识
DOI:10.1177/09544070241272795
摘要
The investigation of magnetorheological (MR) semi-active suspension is crucial for automotive applications. This paper introduces a novel approach by considering time delay effect when load changes and considering vehicle’s spring-loaded mass as an uncertain parameter. To address these challenges, a new magnetorheological semi-active quarter-vehicle suspension controller is proposed. Controller combines inverse model with Taylor series backstepping control strategy to determine the necessary damping force provided by magnetorheological damper based on system’s dynamic error. Additionally, damping force is compensated using Taylor series expansion method. Drive current of magnetorheological damper is obtained by solving hyperbolic positive model parameters and inverse model through nonlinear least squares genetic algorithm. Simulation experiments are conducted to compare the performance of Taylor series backstepping control (TBS) suspension, backstepping control suspension affected by time delay, MSH control suspension affected by time delay and passive suspension. Various metrics such as spring-loaded mass displacement, velocity, acceleration, suspension dynamic displacement, and wheel dynamic load under random road excitation are evaluated. Simulation results demonstrate that proposed system effectively mitigates vehicle vibration caused by time delay and load variations, while enhancing vehicle’s handling and smoothness.
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