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Design and optimization of a hybrid battery thermal management system for electric vehicle based on surrogate model

机译:基于代理模型的电动汽车混合电池热管理系统的设计与优化

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摘要

The hybrid thermal management scheme for lithium-ion battery combining the advantages of various thermal management strategies has been widely adopted. However, due to the complex influence parameters involved in the hybrid thermal management system, its optimal design has become a difficult problem. In this study, a hybrid thermal management system based on phase change material (PCM), liquid cooling, and heat pipe is first designed, and then a precise and reliable numerical heat transfer model is established. In order to optimize the system and improve the optimization efficiency, the Adaptive-Kriging-High dimensional model representation (HDMR) method is used to construct a surrogate model of the thermal management system, and the influencing factors sensitivity analysis and optimization design of the hybrid thermal management system are also conducted. The results show that the thermal conductivity of PCM, the thickness of PCM, the length of heat pipe and the velocity of inlet water have a significant influence on the maximum temperature and temperature difference of the battery system. According to the optimization design of these four factors based on the multi-objective particle swarm optimization (MOPSO), it is found that the optimized thermal management system has the best ability to dissipate heat and maintain temperature uniformity as compared to the original design. In addition, this optimization system has the ability to prevent thermal runaway propagation under the condition of thermal abuse conditions. With these prominent performances, the proposed method is expected to provide insights into the engineering design and optimization of the battery thermal management system for electric vehicle.
机译:锂离子电池混合热管理方案结合了各种热管理策略的优点。然而,由于混合热管理系统中涉及的复杂影响参数,其最佳设计已成为难题。在该研究中,首先设计基于相变材料(PCM),液体冷却和热管的混合热管理系统,然后建立精确且可靠的数值传热模型。为了优化系统并提高优化效率,使用自适应 - 克里格 - 高维模型表示(HDMR)方法来构建热管理系统的代理模型,以及影响混合的影响因素敏感性分析和优化设计也进行了热管理系统。结果表明,PCM的导热率,PCM的厚度,热管的长度和入口水的速度对电池系统的最高温度和温差有显着影响。根据这四个因素的优化设计,基于多目标粒子群优化(MOPSO),发现优化的热管理系统具有最佳能力,与原始设计相比,保持热量和保持温度均匀性。此外,该优化系统能够在热滥用条件的条件下防止热失控传播。通过这些突出的表演,预计该方法将为电动车辆电池热管理系统的工程设计和优化提供见解。

著录项

  • 来源
    《International Journal of Heat and Mass Transfer》 |2021年第8期|121318.1-121318.14|共14页
  • 作者单位

    School of Mechatronk Engineering and Automation Foshan University Foshan 528200 China;

    School of Mechatronk Engineering and Automation Foshan University Foshan 528200 China;

    Energy and Electricity Research Center Jinan University Zhuhai Guangdong Province 510970 China International Energy College Jinan University Zhuhai Guangdong Province 510970 China;

    School of Mechatronk Engineering and Automation Foshan University Foshan 528200 China;

    Energy and Electricity Research Center Jinan University Zhuhai Guangdong Province 510970 China International Energy College Jinan University Zhuhai Guangdong Province 510970 China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Battery Thermal Management; Adaptive-Kriging-HDMR; Phase change material; Liquid cooling; Thermal runaway;

    机译:电池热管理;Adaptive-Kriging-HDMR;相变材料;液体冷却;热失控;

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