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Study on the thermal interaction and heat dissipation of cylindrical Lithium-Ion Battery cells

机译:圆柱形锂离子电池电池热相互作用及散热研究

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Cylindrical Lithium-Ion Batteries have been widely used as power source for electric and hybrid vehicles because of their compact size and high power density. The battery pack is commonly consisted by hundreds of cylindrical Lithium-Ion battery cells in several strings. Because the distance among battery cells is only a few millimeters, the thermal status of battery would directly influent the current efficiency and battery life. In order to maintain proper function of the battery pack, the heat dissipation around battery cells should be deeply investigated and well controlled. This question is undeniably important and which has gained increasing attentions. Researchers have developed some models of the transient temperature distribution in Lithium-Ion battery during the discharge cycle and the thermal management on various kinds of battery packs has been studied. However, because of the compacted and complicated structure inside battery pack, the full thermal status and detail distributions are difficult to be revealed in the same time. In this work, three-dimensional simulation methods have been used to solve the above questions on the combination of several cylindrical Lithium-Ion battery cells. Existing heat generation models in Lithium-Ion battery is defined as the thermal boundary conditions. The flow and convection on the spacing has been studied. The transient thermal interactions and convections among adjacent battery cells have been investigated to explore the influences by spacing and transient heat release rules. The achieved results can be used as critical reference for designing the structures of battery pack and planning the cooling strategies.
机译:由于其紧凑的尺寸和高功率密度,圆柱形锂离子电池已被广泛用作电动和混合动力车辆的电源。电池组通常由数百个圆柱形锂离子电池单元组成,其中若干字符串。由于电池单元之间的距离仅为几毫米,因此电池的热状态将直接影响电流效率和电池寿命。为了保持电池组的适当功能,应深受电池单元周围的散热,并控制良好控制。这个问题是不可否认的,其越来越大的注意。研究人员在放电循环期间开发了一些锂离子电池瞬态温度分布的型号,并研究了各种电池组的热管理。但是,由于电池组内的压实和复杂的结构,因此难以在同一时间揭示完整的热状态和细节分布。在这项工作中,三维仿真方法已被用于解决关于几个圆柱形锂离子电池单元的组合的上述问题。锂离子电池中的现有发热模型被定义为热边界条件。已经研究了间距的流动和对流。已经研究了相邻电池单元之间的瞬态热相互作用和对流,以探讨间隔和瞬态热释放规则的影响。实现的结果可用作设计电池组结构并规划冷却策略的关键参考。

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