下一代电动汽车冷却液的开发

Q4 Materials Science Tribologie und Schmierungstechnik Pub Date : 2022-11-18 DOI:10.24053/tus-2022-0029
Govind Khemchandani
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引用次数: 0

摘要

研究表明,电动汽车液体冷却有两种方法:直接冷却和间接冷却。直接液体冷却涉及冷却剂和电池组之间的直接接触。间接液体冷却需要电池组和冷却剂之间的介质,以防止直接接触。许多著名的电动汽车制造商都采用了间接液体冷却,例如特斯拉和北美的通用汽车。目前,用于内燃发动机(ICE)的货架冷却剂正在许多电动汽车中用于间接冷却。其中一个挑战是缺乏评估EV冷却剂的ASTM测试方法。一些运营商通过使用电压测试低电导率电动汽车冷却剂,使用铜线产生沉积物。多伯很久以前就意识到铜和铝将是电动汽车发动机的主要部件,因此在高温高压下使用铜线来显示冷却剂之间的差异。本文重点介绍了Dober室内试验Parr反应器方法,用于比较各种冷却剂的电导率、pH值和添加剂损耗,从而显示出随时间和温度的有意义的趋势。这最终有助于开发新一代电动汽车冷却剂。得出的结论是,电动汽车冷却剂的最佳性能需要低电导率和坚固的缓蚀包。
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Development of Next Generation EV Coolant
Research indicates that there are two approaches to Electric Vehicle (EV) liquid cooling: direct and indirect. Direct liquid cooling involves direct contact between the coolant and the battery pack. Indirect liquid cooling requires a medium in between the battery pack and the coolant, preventing direct contact. Many prominent EV manufacturers have adopted indirect liquid cooling for example Tesla, and GM in North America. Currently, shelf coolants used for Internal Combustion Engines (ICE) are being used in many EV vehicles for indirect cooling. One of the challenges is absence of ASTM test methods for evaluating EV coolants. Some operators have used copper wires for generating deposits by employing voltage to test low conductivity EV coolants. Dober long ago realized that copper and aluminum will be the main components of EV engines hence used copper wire under high temp and pressure to show differentiation among coolants. The present paper focuses on Dober-in-house test Parr reactor methodology for comparing electrical conductivities, pH and additive depletion of various coolants thereby showing meaningful trends with time and temperature. This ultimately helps in developing new generation EV coolants. It is concluded that low electrical conductivity along with robust corrosion inhibition package is needed for optimum performance of EV coolants.
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来源期刊
Tribologie und Schmierungstechnik
Tribologie und Schmierungstechnik Materials Science-Surfaces, Coatings and Films
CiteScore
0.50
自引率
0.00%
发文量
22
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