纳米增强相变材料对电池组冷却性能的实验研究

G. Murali, G. Sravya, A. Srinath, J. Jaya
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引用次数: 2

摘要

可充电锂离子电池由于其循环寿命和能量密度在现代占据了首要地位。在本研究中,用石蜡作为相变材料(PCM)设计并制造了六边形18650锂离子圆柱电池组。但PCM的低导热性阻碍了电动汽车的发展,这仍然是一个重大挑战。在圆柱形电池模块中,在中间区域获得最高温度,这导致电池之间的温度分布不均匀。为了克服这一限制,实现电池模块的高效性能,采用石墨烯片状纳米粉末(GPN)、多壁碳纳米管(MWCNT)和石墨合成粉末(GSP)将纳米增强相变材料(Ne-PCM)掺入中间四个电池中。在没有任何冷却、PCM冷却和Ne PCM冷却的情况下对电池模块进行实验。结果表明,具有Ne PCM的电池组在所有考虑的放电速率(即(1C、2C和3C)下都将温度降至50°C以下,并保持了电池之间均匀的温度分布,从而显示出成功的性能。
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An Experimental Investigation on Cooling Performance of Battery Pack by Using Nano-Enhanced Phase Change Material
A rechargeable lithium ion battery has captured prime importance in the modern era due to its cycle life and energy density. In the present study hexagonal shaped 18650 lithium ion cylindrical cell battery pack was designed and fabricated with paraffin wax as a Phase Change Material (PCM). But low thermal conductivity of the PCM causes impediment to the development of Electrical Vehicles (EV’s) which remains as a significant challenge. In the cylindrical cell battery module the maximum temperature is obtained in the mid region which causes uneven temperature distribution among cell. In order to overcome the limitation and to achieve efficient performance of battery module, the nano enhanced Phase Change Material (Ne-PCM) was incorporated in middle four cells by using graphene platelet nano powder (GPN), Multi Walled Carbon Nano Tube (MWCNT) and Graphite Synthetic Powder (GSP). Experiments on the battery module were conducted without any cooling, with PCM cooling and with Ne-PCM cooling. The results revealed that Battery pack with Ne-PCM has shown successful performance by minimizing the temperature below 50 °C in all considered discharge rates i.e., (1C, 2C and 3C) and maintained even temperature distribution among cells.
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来源期刊
Journal of Computational and Theoretical Nanoscience
Journal of Computational and Theoretical Nanoscience 工程技术-材料科学:综合
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3.9 months
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