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Thermal Management of Lithium-Ion Battery Modules for Electric Vehicles

机译:电动汽车锂离子电池模块的热管理

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摘要

This research is particularly focused on studying thermal management of lithium-ion (Li-ion) battery modules in electric vehicles by using active, passive and hybrid active-passive methods. The thermal behavior prediction of batteries is performed by a novel electrochemical-thermal model. Different approaches such as single- and double-channel liquid cooling, pure passive by using phase change materials (PCM), and hybrid active-passive thermal management systems are investigated. Various cooling system configurations are examined to expand understanding of the effect of each approach on the battery module thermal responses during a standard driving cycle. It is observed that the temperature distribution of Li-ion batteries is strongly influenced by the electrical and thermal operating conditions and simplified bulk models cannot precisely predict the thermal behavior of these batteries.;Additionally, the PCM-based passive systems show advantages such as compactness and simplicity over the active liquid cooling systems. However, these systems suffer from non-uniform temperature distribution due to the inherently low thermal conductivity of organic PCM. An effort has been made to enhance the thermal conductivity of a paraffin wax by adding various carbon-based nanoparticles. The results revealed that the thermal conductivity of the base PCM can be improved by about 11 times when using 10% mass fraction of graphite nanopowder. The heat transfer in the nano-enhanced PCM samples showed that the presence of nanoparticles drastically represses the natural convection in the melted nanocomposites.;Among the battery thermal management systems studied, the air assisted hybrid cooling system provides the best temperature distribution uniformity in the module while keeping the batteries temperature within the safe limits. Furthermore, this work attempted to recognize the most influential parameters on the temperature distribution in the battery module. It is seen that the thickness of cooling plates and PCM layers in active and hybrid systems has a significant effect on the thermal behavior of the batteries.
机译:这项研究特别专注于通过使用主动,被动和混合主动-被动方法研究电动汽车中锂离子(Li-ion)电池模块的热管理。电池的热行为预测是通过新型电化学热模型进行的。研究了不同的方法,例如单通道和双通道液体冷却,使用相变材料(PCM)的纯被动式以及混合主动-被动式热管理系统。检查了各种冷却系统配置,以扩展对每种方法对标准驾驶周期内电池模块热响应的影响的了解。可以看出,锂离子电池的温度分布受电和热工作条件的强烈影响,简化的体积模型无法准确预测这些电池的热性能。此外,基于PCM的无源系统还具有紧凑性等优点。和主动式液体冷却系统相比简单。但是,由于有机PCM固有的低热导率,这些系统的温度分布不均匀。通过添加各种基于碳的纳米颗粒,已努力提高石蜡的导热性。结果表明,当使用质量分数为10%的石墨纳米粉时,基本PCM的导热率可提高约11倍。纳米增强PCM样品中的热传递表明,纳米颗粒的存在极大地抑制了熔融纳米复合材料中的自然对流。;在研究的电池热管理系统中,空气辅助混合冷却系统在模块中提供了最佳的温度分布均匀性同时将电池温度保持在安全范围内。此外,这项工作试图识别出对电池模块中温度分布最有影响的参数。可以看出,有源系统和混合系统中的冷却板和PCM层的厚度对电池的热性能具有重大影响。

著录项

  • 作者

    Bahiraei, Farid.;

  • 作者单位

    University of Windsor (Canada).;

  • 授予单位 University of Windsor (Canada).;
  • 学科 Engineering.;Automotive engineering.;Energy.;Mechanical engineering.
  • 学位 Ph.D.
  • 年度 2017
  • 页码 169 p.
  • 总页数 169
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:53:27

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