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A nonlinear kinematic and dynamic modeling of Macpherson suspension systems with a magneto-rheological damper

机译:带有磁流变阻尼器的Macpherson悬架系统的非线性运动学和动力学模型

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摘要

It is well known that Macpherson strut suspension systems are widely used in light and medium weight vehicles. The performance of these suspension systems can be enriched by incorporating magneto-rheological (MR) dampers and an appropriate dynamic model is required in order to find out the ride comfort and other performances properly in the sense of practical environment conditions. Therefore, in this work the kinematic and dynamic modeling of Macpherson strut suspension system with MR damper is presented and its responses are evaluated. The governing equations are formulated using the kinematic properties of the suspension system and adopting Lagrange's equation. In the formulation of the model, both the rotation of the wheel assembly and the lateral stiffness of the tire are considered to represent the nonlinear characteristic of Macpherson type suspension system. The formulated mathematical model is then compared with equivalent conventional quarter car suspension model and the different dynamic responses such as the displacement of the sprung mass are compared to emphasize the effectiveness of the proposed model. Additionally, in this work the important kinematic properties of suspension system such as camber angle, king-pin angle and track width alteration, which cannot be obtained from conventional quarter car suspension model, are evaluated in time and frequency domains. Finally, vibration control responses of the proposed suspension system are presented in time and frequency domains which are achieved from the semi-active sky-hook controller.
机译:众所周知,麦克弗森支杆悬挂系统广泛用于轻型和中型车辆。通过结合磁流变(MR)阻尼器可以丰富这些悬架系统的性能,并且需要适当的动力学模型,以便在实际环境条件下正确地找到乘坐舒适性和其他性能。因此,在这项工作中,提出了带有MR阻尼器的Macpherson支撑系统的运动学和动力学模型,并对其响应进行了评估。利用悬架系统的运动学特性并采用拉格朗日方程来制定控制方程。在模型的制定中,车轮组件的旋转和轮胎的横向刚度都被认为代表了麦克弗森式悬架系统的非线性特性。然后将公式化的数学模型与等效的传统四分之一汽车悬架模型进行比较,并比较不同的动态响应(例如簧载质量的位移)以强调所提出模型的有效性。另外,在这项工作中,在时域和频域中评估了悬架系统的重要运动学特性,例如外倾角,主销角和履带宽度变化,这是传统的四分之一车悬架模型无法获得的。最后,提出的悬架系统的振动控制响应在时域和频域中给出,这是通过半主动式天钩控制器实现的。

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