轿车下控制臂悬架部件拓扑优化及强度性能分析

Emmanuelle R. Biglete, M. Manuel, Emie Adrielle A. Arellano, Clifford D. De La Cruz, Brian Johanns O. Monteverde, Jennifer C. Dela Cruz, Roderick C. Tud
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引用次数: 0

摘要

一辆优秀车辆的选择包括悬挂系统提供的乘客的安全性和舒适性。轿车的悬挂系统通常由控制臂、螺旋弹簧和支柱组成。在轿车型车辆中,较低的控制臂被认为是悬挂系统中最重要的部分,因为它可以防止车轮错位和与车身分离。本研究中使用的下控制臂是在丰田车型Vios 2017的MacPherson支柱组件上安装的商用下控制臂。在本研究中,通过Autodesk Fusion 360的CAD/CAE功能和拓扑优化技术对控制臂模型进行建模和仿真,以减少重量和体积。本研究以簧载和非簧载重量为荷载案例,在平坦地形条件下模拟重新设计和自行设计的下控制臂模型。采用静应力分析方法,生成了由模型变形、屈服应力、安全系数和减重百分比4个参数组成的设计矩阵。拓扑优化是通过改变下控制臂模型中切割区域的形状和位置的大量模拟来实现的。
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Topology Optimization and Strength Performance Analysis of a Lower Control Arm Sedan Suspension Part
The selection of an excellent vehicle includes the safety and comfort of passengers which a suspension system provides. The suspension system of a sedan usually consists of control arms, coil spring, and struts. In a sedan-type vehicle, a lower control arm is considered as the most important part of a suspension system because this prevents the wheels from misaligning and separating from the vehicle body. The lower control arm used as subject in this study is a commercially installed lower control arm in a MacPherson strut assembly on a Toyota sedan model – the Vios 2017. In this study, the control arm models are modeled and simulated through Autodesk Fusion 360's CAD/CAE function and topology optimization techniques to reduce the weight and volume. The sprung and unsprung weights are considered in this study as load cases to simulate the redesigned and own design lower control arm model on a flat terrain condition. Static stress analysis is used to generate the design matrix consisting of four parameters namely the deformation, yield stress, safety factor and percent weight reduction on the redesigned models. Topology optimization is achieved through numerous simulations involving changing the shapes and positions of the cut out areas in the lower control arm models.
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