首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part D. Journal of Automobile Engineering >Structural optimization of the automobile frontal structure for pedestrian protection and the low-speed impact test
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Structural optimization of the automobile frontal structure for pedestrian protection and the low-speed impact test

机译:用于行人保护的汽车前围结构的结构优化和低速冲击试验

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摘要

A variety of regulations are involved in the design of an automobile frontal structure. The regulations are pedestrian protection, the Federal Motor Vehicle Safety Standard (FMVSS) part 581 bumper test, and the Research Council for Automobile Repairs (RCAR) test. The frontal structure consists of the bumper system and a crash box that connects the bumper system and the main body. The detailed design of the bumper system is performed to meet two conditions: first, regulation for pedestrian protection (lower-legform impact test); second, FMVSS part 581. In the two regulations, the stiffness requirements of the bumper system conflict with each other. In order to meet lower leg protection, a relatively soft bumper system is required, while a relatively stiff system is typically needed to manage the pendulum impact. A new bumper system is proposed by adding new components and is analysed by using the nonlinear finite element method. An optimization problem is formulated to incorporate the analysis results. Each regulation is considered as a constraint from a loading condition, and two loading conditions are used. Response surface approximation optimization is utilized to solve the formulated problem. RCAR requires reduction in the repair cost when an accident happens. The repair cost in a low-speed crash could be reduced by using an energy-absorbing structure such as the crash box. The crash box is analysed by using the non-linear finite element method. An optimization problem for the crash box is formulated to incorporate the analysis results. Discrete design using orthogonal arrays is utilized to solve the formulated problem in a discrete space.
机译:汽车前围结构的设计涉及许多法规。这些法规包括行人保护,联邦机动车安全标准(FMVSS)的581保险杠测试以及汽车维修研究委员会(RCAR)测试。正面结构由保险杠系统和连接保险杠系统和主体的碰撞盒组成。保险杠系统的详细设计要满足两个条件:第一,行人保护规定(小腿撞击测试);第二,FMVSS部分581。在两个规则中,保险杠系统的刚度要求彼此冲突。为了满足小腿的保护,需要相对较软的保险杠系统,而通常需要相对较硬的系统来控制摆锤。提出了一种新的保险杠系统,增加了新的部件,并使用非线性有限元方法对其进行了分析。制定了一个优化问题以合并分析结果。每个规则都被视为来自负载条件的约束,并且使用两个负载条件。响应面近似优化用于解决所提出的问题。 RCAR要求在发生事故时降低维修成本。通过使用能量吸收结构(例如碰撞盒),可以降低低速碰撞中的维修成本。通过使用非线性有限元方法来分析碰撞盒。制定了碰撞盒的优化问题以合并分析结果。利用正交阵列的离散设计被用来解决离散空间中的公式化问题。

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