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衬套弹簧式二级减振主动悬架及其半车非线性LQG控制器设计

Design for bushing spring type two-stage damped active suspension and its half-vehicle nonlinear LQG controller

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【作者】 陈士安赵翔王骏骋薛梦笛

【Author】 CHEN Shian;ZHAO Xiang;WANG Juncheng;XUE Mengdi;School of Automotive and Traffic Engineering, Jiangsu University;School of Mechanical Engineering, Zhejiang Sci-Tech University;

【通讯作者】 赵翔;

【机构】 江苏大学汽车与交通工程学院浙江理工大学机械工程学院

【摘要】 针对作动器较大等效惯性质量放大需求控制力,阻碍旋转电机式主动悬架性能改善问题,提出了一种衬套弹簧式主动悬架二级减振结构方案。根据多工况实测力学特性,提出包含“反S型”刚度及“准饱和”阻尼特性的衬套弹簧力学模型,并据此建立了衬套弹簧式二级减振主动悬架半车非线性动力学模型;在增加衬套弹簧虚拟阻尼项保证系统稳定的基础上,对刚度的高次非线性项、“准饱和”阻尼非线性项进行前馈反馈线性化,设计出非线性LQG(linear-quadratic-Gaussian)控制器;为获得最优的悬架工作效果,对衬套弹簧虚拟阻尼进行了优化。结果表明,除能获得与传统理想主动悬架非常接近的悬架综合性能外,衬套弹簧式二级减振主动悬架还具有较好的变行驶工况鲁棒性。

【Abstract】 Here, aiming at the problem of actuator’s larger equivalent inertia mass amplifying needed control force and hindering performance improvement of rotary motor type active suspension, a dual vibration reduction structure scheme for bushing spring type active suspension was proposed. Based on the measured mechanical characteristics under multi-operating condition, a bushing spring mechanical model including “inverse S shaped” stiffness and “quasi-saturated” damping characteristics was proposed, the nonlinear dynamic model for a half-vehicle with a bushing spring type two-stage damped active suspension was established based on the above bushing spring mechanical model. Based on adding a virtual damping term of bushing spring to ensure the system stability, a nonlinear LQG controller was designed by linearizing higher order nonlinear term of stiffness and “quasi-saturated” damping nonlinear term with feedforward feedback. In order to obtain the optimal suspension working effect, the virtual damping of bushing spring was optimized. The results showed that besides obtaining a very close comprehensive performance to that of traditional ideal active suspension, bushing spring type two-stage damped active suspension also has better robustness under variable driving conditions.

【基金】 国家自然科学基金(52072158;52205135)
  • 【文献出处】 振动与冲击 ,Journal of Vibration and Shock , 编辑部邮箱 ,2023年15期
  • 【分类号】U463.33
  • 【下载频次】23
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