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Preventing heat propagation and thermal runaway in electric vehicle battery modules using integrated PCM and micro-channel plate cooling system

机译:使用集成PCM和微通道板冷却系统防止电动车辆电池模块中的热传播和热失控

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摘要

The effort to go entirely electric or increase portion of electric among automotive vehicle manufactures has grown significantly in the past few years. However, in the pursuit of this technological change, issues of battery overheating have also come to the forefront. For example, lithium-ion batteries of electric vehicles can lose thermal stability owing to mechanical damage such as nail penetration. A novel battery module thermal management method involving an integrated design of PCM and cooling plate has been proposed for preventing heat propagation and thermal runaway in a battery module made of 18,650 cells that have been damaged by nail penetration of upto three cells. Intense heat generation of the order of 106 J/s under thermal abuse condition along with that of preceding nail penetration and normal discharge condition were obtained using Newman 2D pseudo electrochemical model, short-circuit model and thermal abuse model. Scenarios of upto 3 cells nail penetration were considered. For the case of 3 cells subjected to thermal abuse, when the water flow rate of 3.9 L min(-1) and a counter-current flow was applied to two micro-channel plates, heat propagation to the adjacent cells was prevented. Maximum temperature of the cells adjacent to thermal abused cell was maintained below 363 K, thus preventing rest of the cells in the battery module from undergoing thermal runaway. At the used coolant volumetric flow rate, integrated cooling approach allowed keeping coolant temperature below its boiling point, thus helping in avoiding undesired situations of coolant boiling.
机译:在过去几年中,在汽车车辆制造商中完全电动或电气的一部分努力已经大幅增加。然而,在追求这种技术变革中,电池过热的问题也来到了最前沿。例如,由于指甲渗透等机械损坏,电动车辆的锂离子电池可能会失去热稳定性。已经提出了一种新的电池模块,涉及PCM和冷却板的集成设计的热管理方法,用于防止由18,650个细胞的电池模块中的热传播和热失控,该电池模块由钉子渗透到三个细胞损坏。使用纽曼2D伪电化学模型,短路模型和热滥用模型,获得了热滥用条件下的106 j / s下的96 j / s的发热和正常放电条件。考虑了高达3个细胞指甲渗透的情景。对于对热滥用进行热滥用的3个细胞的情况,当施加3.9μmmm(-1)的水流速和逆流流到两个微通道板时,防止了与相邻电池的热传播。与热滥用电池相邻的细胞的最大温度保持在363k以下,从而防止电池模块中的剩余细胞进行热失控。在使用的冷却剂容积流速下,集成冷却方法允许将冷却剂温度保持在其沸点以下,从而有助于避免冷却剂沸腾的不希望的情况。

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