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Finite Element Analysis and Topography Optimization of Lower Arm of Double Wishbone Suspension Using Abacus and Optistruct

机译:算盘和Optistruct双叉骨悬架下臂的有限元分析和地形优化

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The suspension system is one of the most important components of vehicle, which directly affects the safety, performance, noise level and style of it. The vehicle suspension system is responsible for driving comfort and safety as the suspension carries the vehicle-body and transmits all forces between body and road. Structure optimization techniques under static load conditions have been widely used in automotive industry for lightweight and performance improvement of modern cars. However, these static load conditions could not represent all the severe situations of automobile parts which subjected to complex loads varying with time, especially for lower control arm of front suspension. This paper deals with Finite Element Analysis of the Lower arm suspension of double wishbone suspension which consist the stress optimization under static loadings. Lower arm suspension has been modeled using Unigraphics .In first stage of analysis area of maximum stress was identified. These analysis were carried using Altair Hyperworks and solver used is Abacus. In order to reduce stresses and to improve structural strength Topography optimization approach is carried out in Hyperworks in which a design region for a given part is defined and a pattern of shape variable-based reinforcements within that region is generated to increase Stiffness.
机译:悬架系统是车辆最重要的组成部分之一,它直接影响车辆的安全性,性能,噪声水平和样式。车辆悬架系统负责驾驶的舒适性和安全性,因为悬架承载车身并在车身和道路之间传递所有力。静载荷条件下的结构优化技术已广泛应用于汽车行业,以减轻现代汽车的重量并提高其性能。但是,这些静态载荷条件不能代表汽车部件承受复杂载荷并随时间变化的所有严酷情况,尤其是对于前悬架的下控制臂。本文涉及双叉骨悬架下臂悬架的有限元分析,其中包括静态载荷下的应力优化。下臂悬架已使用Unigraphics建模。在分析的第一阶段,确定了最大应力区域。这些分析是使用Altair Hyperworks进行的,求解器为Abacus。为了减少应力并提高结构强度,Hyperworks中采用了拓扑优化方法,其中定义了给定零件的设计区域,并在该区域内生成了基于形状变量的加强筋图案,以提高刚度。

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