Composite Based Lightweight Structure Design for Crash and Safety Application

Fahmi Rizal Fauzi, B. K. Hadi, S. Santosa, A. Jusuf
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引用次数: 4

Abstract

Optimizing vehicle structures to obtain lightweight construction is an important task to increase power consumption efficiency, especially for electric vehicles. On the other hand, lightweight vehicles typically have crashworthiness concerns. Vehicle crashworthiness is becoming very critical for electric vehicle due to potential for high voltage shortage and thermal issues of the battery system. Composite materials can become an option to fulfill the lightweight structure requirements because of strength to weight ratio higher than common metallic materials. In the developments of electricity vehicles, composite materials can be the first option to protect the structure from shortage issues. This research studied the experimental and numerical analysis of composite based crashbox structures. The crashbox was made of carbon fiber reinforced polymer composite (CFRP) with the double hat thin-walled constructions. The simulation and experimental studies of the crashbox was done under the axial crushing load. Specimens were made with various thicknesses and various number of layers. The crashworthiness simulation of the composite based crashbox structure shows good agreement with experimental results. The simulation was done by using LS-Dyna code, and damage kinematics was able to be replicated by adjusting critical parameters of DFAIL and SOFT.
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基于复合材料的碰撞与安全轻量化结构设计
优化汽车结构以获得轻量化结构是提高汽车能耗效率的重要任务,尤其是电动汽车。另一方面,轻型车辆通常有耐撞性问题。由于潜在的高压短缺和电池系统的热问题,汽车的耐撞性对电动汽车来说变得非常重要。由于复合材料的强度重量比高于普通金属材料,因此可以成为满足轻量化结构要求的一种选择。在电动汽车的发展中,复合材料可以成为保护结构免受短缺问题的首选。本文对复合材料基碰撞箱结构进行了实验和数值分析。碰撞箱采用双帽薄壁结构的碳纤维增强聚合物复合材料(CFRP)。在轴向破碎载荷作用下,对碰撞箱进行了仿真和试验研究。制作了不同厚度和不同层数的样品。复合材料碰撞箱结构的耐撞性仿真结果与试验结果吻合较好。采用LS-Dyna程序进行仿真,通过调整DFAIL和SOFT的关键参数,可以复制损伤运动学。
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