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An analytical approach for design and performance evaluation of torsion beam rear suspension

机译:扭力梁后悬架设计与性能评估的分析方法

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Torsion beam rear suspension systems have been widely used in small passenger cars owing to their compactness, light weight, and cost efficiency. To study the roll behavior of torsion beam suspension systems, analytical equations to obtain roll center height, roll steer, and roll camber have been developed in terms of geometry points through the kinematic consideration of the system on the assumption of rigid body motion. In most cases, commercial software for finite element methods or experimental equations for individual parts are utilized for the design and evaluation of the suspension systems. This paper, however, proposes an analytical method to calculate the torsional stiffness of a torsion beam for various loading conditions based on the assumption that a torsion beam is in the range of linear torsional angles with a constant cross section. The proposed method is useful for exploring suspension system design, especially in the early stage of vehicle system development in which detail design parameters such as layout, cross sections, and materials are not yet determined. It is shown that the torsional stiffness and roll stiffness predicted using the proposed method has sufficient precision with around four percent difference from the results of finite element analysis and bench tests.
机译:扭力梁后悬架系统由于其紧凑,重量轻和成本效率高而已广泛用于小型乘用车中。为了研究扭力梁悬架系统的侧倾特性,通过在刚体运动的前提下对系统进行运动学考虑,开发了用于获得侧倾中心高度,侧倾转向和侧倾弯度的解析方程。在大多数情况下,用于有限元方法的商业软件或用于单个零件的实验方程式可用于悬架系统的设计和评估。然而,本文提出了一种分析方法,该方法基于扭转梁在具有恒定横截面的线性扭转角范围内的假设,来计算各种载荷条件下的扭转梁的扭转刚度。所提出的方法对于研究悬架系统设计很有用,尤其是在车辆系统开发的早期阶段,在该阶段尚未确定详细的设计参数,例如布局,横截面和材料。结果表明,使用该方法预测的扭转刚度和侧倾刚度具有足够的精度,与有限元分析和基准试验的结果相差约百分之四。

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