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Experimental and Simulation Studies of Thermal Distribution on Modified Connector of Li-Ion Battery for Electric Vehicles Application

机译:电动汽车用锂离子电池改性连接器热分布的实验与仿真研究

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One of the several failure cases in electric vehicle could be occured at the Lithium-ion (Li-ion) battery connectors when loaded by high current. This failure caused by bad contact of connectors so that the contact resistance increase and lead to high power losses, overheating, and it can even cause a fire hazard. This paper presents a thermal distributions of Li-ion battery connectors on different coating material in relation to the value of contact resistance. There were two test samples of modeled: copper connection without coating and copper connection with silver coating. Each sample was loaded by the DC current of 350A, and temperature at the connection was measured until steady state condition reached and simulated by Solidwork software. The results show that the temperature at the inside contact area was higher than the outside contact area of connection that appears caused by higher of the contact resistance. Both measurement and simulation results have same tendency that copper connection with silver coating having lower contact resistance, lower maximum temperature, and lower losses about 32 % than copper connection without coating. Silver coating can be considered as other alternative to prevent overheating, high losses, and failure in Li-ion battery connector.
机译:在高电流负载下,电动汽车的几种故障情况之一可能发生在锂离子电池接头处。这种故障是由于连接器接触不良引起的,从而使接触电阻增加并导致高功率损耗,过热,甚至可能引起火灾。本文介绍了锂离子电池连接器在不同涂层材料上相对于接触电阻值的热分布。有两个模型化的测试样本:无涂层的铜连接和有银涂层的铜连接。每个样品均由350A的直流电流加载,并测量连接处的温度,直到达到稳态条件为止,并通过Solidwork软件进行仿真。结果表明,内部接触区域的温度高于连接的外部接触区域的温度,这是由较高的接触电阻引起的。测量和模拟结果都具有与没有镀层的铜连接相比具有更低的接触电阻,更低的最高温度和更低的损耗约32%的具有银涂层的铜连接的趋势。银涂层可以被视为防止锂离子电池连接器过热,高损耗和故障的其他选择。

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