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Optimal Vibration Control for Half-Car Suspension on In-Vehicle Networks in Delta Domain

机译:Delta域内车载网络半车悬架的最佳振动控制

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The paper explores the optimal vibration control design problem for a half-car suspension working on in-vehicle networks in delta domain. First, the original suspension system with ECU-actuator delay and sensor-ECU delay is modeled. By using delta operators, the original system is transformed into an associated sampled-data system with time delays in delta domain. After model transformation, the sampled-data system equation is reduced to one without actuator delays and convenient to calculate the states with nonintegral time delay. Therefore, the sampled-data optimal vibration control law can be easily obtained deriving from a Riccati equation and a Stein equation of delta domain. The feedforward control term and the control memory terms designed in the control law ensure the compensation for the effects produced by disturbance and actuator delay, respectively. Moreover, an observer is constructed to implement the physical realizability of the feedforward term and solve the immeasurability problem of some state variables. A half-car suspension model with delays is applied to simulate the responses through the designed controller. Simulation results illustrate the effectiveness of the proposed controller and the simplicity of the designing approach.
机译:本文探讨了在三角洲地区的车载网络上工作的半车式悬架的最佳振动控制设计问题。首先,对具有ECU执行器延迟和传感器-ECU延迟的原始悬架系统进行建模。通过使用增量运算符,原始系统将转换为在增量域中具有时间延迟的关联采样数据系统。模型转换后,将采样数据系统方程式简化为一个无执行器延迟的方程式,方便计算具有非整数时间延迟的状态。因此,可以容易地从δ域的Riccati方程和Stein方程导出采样数据的最佳振动控制律。控制律中设计的前馈控制项和控制记忆项分别确保补偿由干扰和执行器延迟产生的影响。此外,构造观察者以实现前馈项的物理可实现性并解决某些状态变量的不可度量性问题。应用带有延迟的半车悬架模型来通过设计的控制器模拟响应。仿真结果说明了所提出控制器的有效性和设计方法的简单性。

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