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首页> 外文期刊>Applied Energy >Reducing cell-to-cell spacing for large-format lithium ion battery modules with aluminum or PCM heat sinks under failure conditions
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Reducing cell-to-cell spacing for large-format lithium ion battery modules with aluminum or PCM heat sinks under failure conditions

机译:减少故障条件下带有铝或PCM散热器的大幅面锂离子电池模块的电池间距

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摘要

Thermal management is critical for large-scale, shipboard energy storage systems utilizing lithium-ion batteries. In recent years, there has been growing research in thermal management of lithium-ion battery modules. However,, there is little information available on the minimum cell-to-cell spacing limits for indirect, liquid cooled modules when considering heat release during a single cell failure. For this purpose, a generic four-cell module was modeled using finite element analysis to determine the sensitivity of module temperatures to cell spacing. Additionally, the effects of different heat sink materials and interface qualities were investigated. Two materials were considered, a solid aluminum block and a metal/wax composite block. Simulations were run for three different transient load profiles. The first profile simulates sustained high rate operation where the system begins at rest and generates heat continuously until it reaches steady state. And, two failure mode simulations were conducted to investigate block performance during a slow and a fast exothermic reaction, respectively. Results indicate that composite materials can perform well under normal operation and provide some protection against single cell failure; although, for very compact designs, the amount of wax available to absorb heat is reduced and the effectiveness of the phase change material is diminished. The aluminum block design performed well under all conditions, and showed that heat generated during a failure is quickly dissipated to the coolant, even under the closest cell spacing configuration. (C) 2016 Elsevier Ltd. All rights reserved.
机译:对于使用锂离子电池的大型舰船储能系统,热管理至关重要。近年来,在锂离子电池模块的热管理方面的研究不断增长。但是,当考虑单电池故障期间的热量释放时,关于间接液冷模块的最小电池间距限制的信息很少。为此,使用有限元分析对通用的四单元模块进行建模,以确定模块温度对单元间距的敏感性。此外,还研究了不同散热器材料和界面质量的影响。考虑了两种材料,固态铝块和金属/蜡复合块。针对三种不同的瞬态负载曲线进行了仿真。第一个曲线模拟持续的高速率运行,在此状态下,系统开始处于静止状态,并持续产生热量直至达到稳态。并且,进行了两种故障模式模拟,分别研究了缓慢放热反应和快速放热反应期间的嵌段性能。结果表明,复合材料在正常操作下性能良好,并提供了一些防止单电池失效的保护措施。但是,对于非常紧凑的设计,可以减少吸收热量的蜡量,并且相变材料的有效性会降低。铝块设计在所有条件下均表现良好,并且表明即使在最接近的电池间隔配置下,故障期间产生的热量也会迅速散发到冷却液中。 (C)2016 Elsevier Ltd.保留所有权利。

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