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Skyhook and H_∞ Control of Semi-active Suspensions: Some Practical Aspects

机译:半主动悬架的Skyhook和H_∞控制:一些实际方面

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This paper deals with single-wheel suspension car model. We aim to prove the benefits of controlled semi-active suspensions compared to passive ones. The contribution relies on H_∞ control design to improve comfort and road holding of the car under industrial specifications, and on control validation through simulation on an exact nonlinear model of the suspension. Note that we define semi-active suspensions as control systems incorporating a parallel spring and an electronically controlled damper. However, the type of damper used in automotive industry can only dissipate energy. No additional force can be generated using external energy. The control issue is then to change, in an accurate way, the damping (friction) coefficient in real-time. This is what we call semi-active suspension. For this purpose, two control methodologies, H_∞ and Skyhook control approaches, are developed, using a linear model of the suspension, and compared in terms of performances using industrial specifications. The performance analysis is done using the control-oriented linear model first, and then using an exact nonlinear model of the suspension incorporating the nonlinear characteristics of the suspension spring and damper.
机译:本文涉及单轮悬架汽车模型。我们旨在证明与被动悬挂相比,受控半主动悬挂的好处。该贡献依赖于H_∞控制设计来提高汽车在工业规格下的舒适性和持路性,并取决于通过对悬架的精确非线性模型进行仿真来进行的控制验证。请注意,我们将半主动悬架定义为包含平行弹簧和电子控制阻尼器的控制系统。但是,汽车工业中使用的阻尼器类型只能耗散能量。使用外部能量不会产生额外的力。然后,控制问题就是要以准确的方式实时更改阻尼(摩擦)系数。这就是我们所说的半主动悬挂。为此,使用悬架的线性模型开发了H_∞和Skyhook控制方法这两种控制方法,并根据工业规范对性能进行了比较。首先使用面向控制的线性模型进行性能分析,然后使用包含悬架弹簧和减振器非线性特性的精确的悬架非线性模型进行性能分析。

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