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Crushing behaviors and failure of packed batteries

机译:破碎电池的行为和失效

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The mechanical and failure behaviors of individual 18,650 cylindrical battery have been studied in many papers recently, showing that the internal short-circuit of the battery can be induced by the mechanical load. In practice, the cylindrical batteries mostly work in a packed way and there is little research on the packed batteries. In the present paper, failure behaviors of packed batteries under both quasi-static compression and dynamic collision are investigated by tests. It is shown that the deformation of the packed batteries is very different from those of the individual ones. The failure of the packed batteries is caused by the nonuniform deformation within each battery, which creates vulnerable areas near the gap among batteries. Besides, it is found that the packed batteries under impact collision undergo distinguishing behaviors from those under quasi-static compression. Under quasi-static situations, the packed batteries deform uniformly and the failure batteries distribute randomly. However, under dynamic impact, the packed batteries are crushed row by row with force concentrating at some certain rows, which results in the heavier damage of the batteries under the same crushing displacement, meaning a higher failure risk. Then numerical simulations are employed to deeply investigate the dynamic mechanism of the packed batteries. Four types of failure behaviors are discovered for the packed batteries under dynamic collision, which are related to the stress wave propagation and give a good explanation on the complex dependence of the failure displacement of the packed batteries on the crushing speed. The results indicate that the crushing velocity dominates the failure behavior of the packed batteries rather than the crushing energy. The failure displacement of the battery pack will dramatically decrease once the crushing velocity larger than 20 m/s. More attention should be drawn on the dynamic safety of the packed batteries and the related safety standards also need to consider the complex dynamic collision. All the investigations may provide a basic foundation for the safety protection research of the packed batteries, which are helpful for electric vehicle industry and other structures with packed batteries.
机译:最近在许多论文中研究了个体18,650圆柱电池的机械和故障行为,表明电池的内部短路可以通过机械负载引起。在实践中,圆柱电池主要以填充方式工作,并且对填充电池几乎没有研究。在本文中,通过试验研究了诸如准静态压缩和动态碰撞下的包装电池的失效行为。结果表明,填充电池的变形与个体的电池的变形非常不同。包装电池的失效是由每个电池内的不均匀变形引起的,这在电池间的间隙附近产生易受攻击的区域。此外,发现填充电池的冲击碰撞碰撞从准静态压缩下的区分行为。在准静态情况下,填充电池均匀变形,故障电池随机分布。然而,在动态撞击下,填充电池按行粉碎排列,力在一些某些行处集中,这导致电池在相同的破碎位移下造成较重损坏,这意味着更高的故障风险。然后采用数值模拟来深入研究包装电池的动态机制。在动态碰撞下为填充电池发现了四种类型的故障行为,其与应力波传播有关,并对包装电池对破碎速度的复杂依赖性进行了良好的解释。结果表明,破碎速度主导包装电池的故障行为而不是破碎能量。一旦大于20米/秒的破碎速度,电池组的故障位移将显着降低。应更多地注意填充电池的动态安全性,相关安全标准也需要考虑复杂的动态碰撞。所有调查都可以为包装电池的安全保护研究提供基础基础,这有助于电动汽车行业和带有包装电池的其他结构。

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