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Investigation on the cooling and temperature uniformity of power battery pack based on gradient phase change materials embedded thin heat sinks

机译:基于梯度相变材料嵌入式薄散热器的动力电池组冷却和温度均匀性研究

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摘要

In order to further increase the temperature uniformity of power battery, a thermal management method based on thin heat sink embedded with PCM was investigated in this paper. The thermophysical property and distribution of PCM are the key factors affecting the thermal management performance. A comparative study on the cooling and homogenization performance of the battery thermal management system under different thermal conductivities, melting temperature and distributions of PCM were explored carefully. The main results show that the maximum temperature and temperature standard deviation (STD) of the battery can be decreased with the function of heat sink embedded with PCM. Comparing to air cooling method, the maximum temperature and STD of the battery can be decreased by about 11.2% and 78.3% at 600 s, respectively. The influence of thermal conductivity can be neglected. Lowering the melting temperature and increasing latent heat can reduce the maximum temperature and STD. In additional, it is found that the distribution of PCM with different melting temperature or latent heat can obviously affect the maximum temperature and temperature uniformity of the battery. It could be a useful way to optimize the thermal management performance.
机译:为了进一步提高电能电池的温度均匀性,本文研究了基于嵌入PCM的薄散热器的热管理方法。 PCM的热物理性和分布是影响热管理性能的关键因素。仔细探讨了不同热导流性,熔化温度和PCM熔化温度和PCM分布下电池热管理系统的冷却和均匀化性能的比较研究。主要结果表明,电池的最高温度和温度标准偏差(STD)可以通过嵌入PCM的散热器的功能来降低。与空气冷却方法相比,电池的最高温度和STD可分别在600秒下减少约11.2%和78.3%。可以忽略导热率的影响。降低熔化温度并增加潜热可以减少最高温度和STD。另外,发现具有不同熔化温度或潜热的PCM的分布可以显然会影响电池的最高温度和温度均匀性。它可能是优化热管理性能的有用方法。

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