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作 者:闫盖 方明霞[2] YAN Gai;FANG Ming-xia(College of Engineering,Shanghai Polytechnic University,Shanghai 201209,China;School of Aerospace Engineering and Applied Mechanics,Tongji University,Shanghai 200092,China)
机构地区:[1]上海第二工业大学工学部,上海201209 [2]同济大学航空航天与力学学院,上海200092
出 处:《科学技术与工程》2020年第20期8367-8372,共6页Science Technology and Engineering
基 金:国家自然科学基金(11772229);上海第二工业大学重点学科项目(XXKZD1601)。
摘 要:在车辆悬架系统中引入时滞速度反馈控制,采用理论与数值相结合的方法研究控制系统的稳定性和控制特性。首先,建立了含控制输入时滞的悬架系统模型。然后采用多项式判别定理与全时滞稳定性判定定理研究系统的稳定性,获得满足全时滞稳定性的系统结构参数范围,并得到数值结果的验证。最后,在一定的系统固有时滞下,采用遗传算法对结构参数和控制增益进行优化。结果显示,优化后的簧载质量加速度比优化前降低了22.7%,表明时滞速度反馈控制律可以有效改善悬架性能,为悬架结构参数的设计及控制策略的选择提供了理论依据,具有重要的工程应用价值。The time-delay speed feedback control was introduced into the vehicle suspension system, and the stability and control characteristics of the control system were studied by combining theoretical and numerical methods. First, the model of suspension system with time delay was established, and then the stability of the system was studied by using the polynomial discriminant theorem and the full delay stability discriminant theorem, and the ranges of system structural parameters satisfying the full delay stability were determined and verified in numerical method. Finally, under certain inherent time delay of the system, the structural parameters and control gain were optimized in a genetic algorithm. The results show that the optimized acceleration of spring load mass is 22.7% lower than that before optimization. It is shown that the time delay speed feedback control could improve effectively the suspension performance, which provides a theoretical basis for the design of suspension structural parameters and the selection of control strategies, and has an important value in engineering applications.
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