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首页> 外文期刊>International Journal of Photoenergy >Experimental and Numerical Investigation on an Integrated Thermal Management System for the Li-Ion Battery Module with Phase Change Material
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Experimental and Numerical Investigation on an Integrated Thermal Management System for the Li-Ion Battery Module with Phase Change Material

机译:相变材料锂离子电池模块集成热管理系统的实验性和数值研究

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Lightweight power battery modules with outstanding thermal performance are urgently required given the rapid development of electric vehicles. This study proposes a composite phase change material coupled with forced convection as an integrated thermal management system (ITMS) with the aim to control the temperature’s rising tendency and maintain the temperature distribution uniformly within an appropriate range among the battery modules. The thermal behavior effects of airflow rates on the thermal management system were investigated in detail by combining experiments and numerical simulations. Comparisons were conducted between an air cooling system with an optimum flow rate and the ITMS. Experimental results revealed that the cooling effect of the ITMS was better than that of the forced cooling system at a 3?m/s airflow rate. The maximum temperature in the designed battery module was limited to 63.2°C. The maximum temperature difference was limited to 4.8°C at a 4?C discharge rate. This research indicates that the ITMS is an effective and optimized approach to control and balance the temperature among battery modules, thereby providing engineers with design optimization strategies for similar systems.
机译:允许电动汽车的快速发展,迫切需要具有出色的热性能的轻质动力电池模块。该研究提出了一种与强制对流相结合的复合相变材料,作为集成的热管理系统(ITMS),其目的是控制温度的上升趋势,并在电池模块之间的适当范围内均匀地保持温度分布。通过组合实验和数值模拟,详细研究了气流速率对热管理系统的热行为效应。在具有最佳流速和ITMS的空气冷却系统之间进行比较。实验结果表明,ITMS的冷却效果优于强制冷却系统的3Ωm/ s气流率。设计的电池模块中的最高温度限制为63.2°C。最高温度差为4°C放电率限制在4.8°C。该研究表明,ITMS是一种有效且优化的方法来控制和平衡电池模块之间的温度,从而为类似系统提供设计优化策略的工程师。

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