考虑到汽车车轮的旋转特性,对疲劳试验下的轮辐拓扑结构进行优化

Aifeng Li, Run Jin, Yanlong Zhao, Fenghe Wu, Zhaohua Wang
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引用次数: 0

摘要

轮辐的拓扑结构对汽车车轮的安全性和轻量化有很大影响。然而,车轮的旋转过程很难在设计和优化中体现出来。本文研究了考虑旋转特性的疲劳试验下轮辐的拓扑结构优化。首先介绍了弯曲疲劳试验和径向疲劳试验,并给出了相应的计算模型来计算轮毂的机械性能。建立了内应力与轮辐数量之间的关系,并分析了不同轮辐数量下的机械性能,以指导轮辐数量的选择。然后,根据轮辐的配置,将轮毂的旋转特性简化为不同方向或位置的静载荷。通过折衷编程方法定义了包括测试和负载水平在内的综合评估函数,以模拟旋转过程中的应力。确定了两级拓扑优化方法。接着,建立了基于各向同性固体材料的多目标轮辐拓扑优化数学模型,并得到了一种新型轮毂。最后,将其机械性能与原始轮毂进行了比较。结果表明,在两种测试条件下,轮毂的刚度和强度都得到了改善,重量减轻了 2.75%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Topology optimization of wheel spoke under fatigue tests considering the rotation characteristics of automobile wheels
The topology structure of wheel spoke has a great impact on the safety and lightweight of automobile wheels. However, the rotation process of the wheels is difficult to be reflected in the design and optimization. In this paper, the topology optimization of wheel spoke under fatigue tests considering the rotation characteristics is studied. The bending fatigue test and radial fatigue test are first introduced and the corresponding computation models are presented to calculate the mechanical performances of the wheel hub. The relationship between the internal stress and the number of the wheel spokes is established, and the mechanical performances with different number of wheel spokes are analyzed to guide the selection to the number. Then, the rotation characteristics of the wheel hub are simplified as static loads at different directions or positions according to the configuration of the wheel spokes. A comprehensive evaluation function which includes the test and load levels is defined by the compromise programming method to simulate the stress during the rotation process. Two levels of topology optimization methods are determined. Next, a mathematical model of multi-objective topology optimization for the wheel spoke is established based on the Solid Isotropic Material with Penalization, and a new wheel hub is obtained. Finally, the mechanical performances are compared with the original wheel hub. The obtained results show that the stiffness and strength of the wheel hub are improved under two test conditions, while the weight is reduced by 2.75%.
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