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Structured H2 Optimization of Vehicle Suspensions Based on Multi-Wheel Models

机译:基于多轮模型的汽车悬架结构化H2优化

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摘要

Various control techniques, especially LQG optimal control, have been applied to the design of active and semi-active vehicle suspensions over the past several decades. However passive suspensions remain dominant in the automotive marketplace because they are simple, reliable, and inexpensive. The force generated by a passive suspension at a given wheel can depend only on the relative displacement and velocity at that wheel, and the suspension parameters for the left and right wheels are usually required to be equal. Therefore, a passive vehicle suspension can be viewed as a decentralized feedback controller with constraints to guarantee suspension symmetry. In this paper, we cast the optimization of passive vehicle suspensions as structure-constrained LQG/H2 optimal control problems. Correlated road random excitations are taken as the disturbance inputs; ride comfort, road handling, suspension travel, and vehicle-body attitude are included in the cost outputs. We derive a set of necessary conditions for optimality and then develop a gradient-based method to efficiently solve the structure-constrained H2 optimization problem. An eight-DOF four-wheel-vehicle model is studied as an example to illustrate application of the procedure, which is useful for design of both passive suspensions and active suspensions with controller-structure constraints.
机译:在过去的几十年中,各种控制技术,尤其是LQG最优控制,已被应用于主动和半主动车辆悬架的设计。然而,由于被动悬架简单,可靠且便宜,因此在汽车市场上仍然占主导地位。在给定车轮上被动悬架产生的力只能取决于该车轮上的相对位移和速度,通常要求左右车轮的悬架参数相等。因此,被动式车辆悬架可以看作是分散的反馈控制器,其约束条件可以保证悬架的对称性。在本文中,我们将无源车辆悬架的优化问题视为结构受限的LQG / H2最优控制问题。相关的道路随机激励作为扰动输入。成本输出中包括了乘坐舒适性,道路处理,悬架行程和车身姿态。我们得出了优化的一组必要条件,然后开发了一种基于梯度的方法来有效解决结构受限的H2优化问题。以八自由度四轮汽车模型为例,说明该程序的应用,该模型对于设计具有控制器结构约束的被动悬架和主动悬架均很有用。

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