The Concept of Sandwich Panel Structures for Battery Protections in Electric Vehicles Subjected to Ground Impact

P. Halimah, S. Santosa, A. Jusuf, T. Dirgantara
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引用次数: 5

Abstract

Nowadays, with the advances of transportation's technology and the need to fulfill the demands on electric vehicles, the study of the behavior of a battery system subjected to dynamic impact loading is very important to ensure the safety of the system. This is due to the fact that the main power source in electric vehicles, such as Li-ion battery, is so fragile that any small deformation can lead to a thermal event such as fire on the battery system. As an example, a rock that flies and hit the bottom of the vehicle floor can induce a structural damage on the battery which is placed in the floor system. Hence a structural protection system needs to be designed to minimize deformations that affect the performance and operations of the Li-ion batteries. In this research, a study on a lightweight structure concept to protect the Li-ion battery has been carried out. The lightweight protector must be able to reduce any external forces' effect, such as dynamic impact loads. The goal of this research is to design and analyze the battery protection system and to determine the most effective design that can minimize the damage. There are two types of sandwich geometries evaluated in this study, namely Blast Resistant Adaptive Sandwich (BRAS) and Navy Truss (NavTruss) sandwich systems. The structures comprised of aluminum face plates and lightweight core based on BRAS and NavTruss system. The geometries are modeled and simulated by using finite element method in LS-DYNA. The concept of BRAS sandwich structures appeared to be efficient in minimizing the damage on the battery system subjected to dynamic impact loading.
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地面冲击下电动汽车电池保护夹层板结构的概念
随着交通运输技术的进步和对电动汽车的要求不断提高,研究电池系统在动态冲击载荷作用下的行为对保证电池系统的安全运行具有重要意义。这是因为电动汽车的主要电源,如锂离子电池,非常脆弱,任何微小的变形都可能导致电池系统发生火灾等热事件。举个例子,一块飞起来的石头砸到汽车地板的底部会对地板系统中的电池造成结构性损伤。因此,需要设计一个结构保护系统,以最大限度地减少影响锂离子电池性能和操作的变形。本研究对保护锂离子电池的轻量化结构概念进行了研究。轻型保护器必须能够减少任何外力的影响,例如动态冲击载荷。本研究的目的是设计和分析电池保护系统,并确定最有效的设计,可以最大限度地减少损害。本研究评估了两种类型的夹层几何结构,即抗爆炸自适应夹层(BRAS)和海军桁架(NavTruss)夹层系统。结构由铝面板和基于BRAS和NavTruss系统的轻质核心组成。在LS-DYNA中采用有限元方法对其几何形状进行了建模和仿真。BRAS夹层结构的概念似乎可以有效地减少电池系统在动态冲击载荷下的损伤。
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