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Investigation of mechanical property of cylindrical lithium-ion batteries under dynamic loadings

机译:圆柱锂离子动力电池力学性能研究

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Understanding of mechanical property of lithium-ion batteries is the key to unlock complicated and coupled behaviors of thermal runaway, which is triggered during electric vehicle collision. In this study; mechanical behaviors of cylindrical lithium-ion batteries under dynamic loadings are investigated. Two types of 18650 lithium-ion batteries, namely LiNiCoAlO2 and LiNiCoMnO2, are chosen to perform compression tests at various dynamic loadings. Experimental results indicate that these two types of 18650 lithium-ion batteries exhibit strain rate hardening behaviors, namely their resistances to deformation enhance as loading rate increases. LiNi-CoMnO2 batteries show obvious strain rate hardening behaviors at low loading rates while LiNiCoAlO2 batteries can only show strain rate hardening behaviors until the loading rate increases to a certain value. The constitutive model of the jellyroll of lithium-ion batteries is proposed to describe these mechanical behaviors under dynamic loadings and it is validated by a finite element model of lithium-ion batteries. The proposed constitutive model can be utilized to evaluate the crashworthiness of lithium-ion batteries in the case of impact accidents and 'provide valuable guidance for the structure design of battery packs in electric vehicles.
机译:理解锂离子电池的机械性能是解锁热失控的复杂和耦合行为的关键,热失控是在电动汽车碰撞过程中触发的。在这个研究中;研究了圆柱形锂离子电池在动态载荷下的力学行为。选择了两种类型的18650锂离子电池,即LiNiCoAlO2和LiNiCoMnO2,以在各种动态载荷下执行压缩测试。实验结果表明,这两种类型的18650锂离子电池均表现出应变速率硬化行为,即它们的抗变形能力随负载速率的增加而增强。 LiNi-CoMnO2电池在低负荷率下表现出明显的应变率硬化行为,而LiNiCoAlO2电池仅在负荷率增加到一定值时才表现出应变率硬化行为。提出了锂离子电池胶体的本构模型来描述动态载荷下的这些力学行为,并通过锂离子电池的有限元模型对其进行了验证。所提出的本构模型可用于评估发生碰撞事故时锂离子电池的耐撞性,并为电动汽车电池组的结构设计提供有价值的指导。

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