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Experimental study and numerical simulation of a Lithium-ion battery thermal management system using a heat pipe

机译:热管锂离子电池热管理系统的实验研究与数值模拟

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The use of electric appliances equipped with lithium-ion batteries, have been increasing every day. The energy density of lithium-ion batteries is high; however, their lifespan and performance are heavily influenced by the rise in temperature. Hence, the development of thermal management of the lithium-ion battery is very necessary. One of the most effective methods for battery cooling is the use of heat pipe. Since many batteries are used together in order to generate higher power, it is important to predict their thermal performance. In this study, a lithium-ion battery heat management system equipped with a heat pipe is investigated. Part of a battery pack consisting of two batteries and a made heat pipe is selected and its performance is investigated experimentally. These tests are performed at various ambient temperatures through a made test chamber with the ability to accurately control temperature. In addition, with the help of software, a coupled simulation model for lithiumion battery cooling with a heat pipe has been developed and compared with experimental data. The experimental results show that although with increasing ambient temperature, the battery surface temperature increases, but due to the decrease in thermal resistance of the heat pipe, the effect of this temperature rise can be moderated and work as an active method. In addition, using forced convection in the condenser section, not only can the battery surface temperature be controlled below 40 degrees C, but it also distributes the temperature uniformly over the battery surface. The use of the heat pipe also helps to maintain more stable temperature conditions with lower temperature fluctuations in consecutive battery cycles.
机译:使用配备锂离子电池的电器每天都在增加。锂离子电池的能量密度高;然而,它们的寿命和性能受到温度升高的严重影响。因此,锂离子电池的热管理的发展是非常必要的。电池冷却最有效的方法之一是使用热管。由于许多电池一起使用以产生更高的功率,因此预测其热性能非常重要。在该研究中,研究了配备有热管的锂离子电池热管理系统。选择由两个电池和制造的热管组成的电池组的一部分,并通过实验研究其性能。这些测试在各种环境温度下通过制造的测试室进行,具有精确控制温度的能力。此外,在软件的帮助下,已经开发了一种具有热管的锂电池冷却的耦合仿真模型,并与实验数据进行了比较。实验结果表明,尽管随着环境温度的增加,电池表面温度升高,但由于热管的热阻降低,可以调节该温度升高的效果并用作有源方法。此外,在冷凝器部分中使用强制对流,不仅可以将电池表面温度控制在40℃以下,而且还将温度均匀地分布在电池表面上。热管的使用还有助于保持更稳定的温度条件,在连续电池循环中具有较低的温度波动。

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