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Liquid Jet Impingement Cooling of a Silicon Carbide Power Conversion Module for Vehicle Applications

机译:车用碳化硅功率转换模块的液体射流冲击冷却

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Thermal management of power electronics is an extremely challenging problem in the harsh environment of military hybrid vehicles, where the local air and liquid coolant's temperature exceed 100 °C under regular operating conditions. This paper presents the development work of a high heat flux, jet impingement-cooled heat exchanger for a 600-V/50-A silicon carbide (SiC) power module (rated at 175 °C device junction temperature), used for bidirectional power conversion between a 28-V battery and a 300-V dc bus. A total of 50 volume% mixture of water–ethylene glycol (WEG) coolant at 100 °C inlet temperature is the only available coolant. An array of WEG coolant microjets impinges on the base plate of the SiC module. The jet impingement cooling system has been optimized by experimental studies on a surrogate module, along with a high-fidelity computational model, to accurately estimate the SiC device junction temperature in relevant operating conditions. Results indicate that at the design heat load of 151 W (worst-case scenario), the SiC device junction temperature is reduced from 290 °C with commercial-off-the-shelf (COTS) cold plate cooling and 215 °C with COTS microchannel heat exchanger cooling, to 169 °C with a jet impingement-cooled heat exchanger, using the same flow rate.
机译:在军用混合动力车辆的恶劣环境中,电力电子的热管理是一个极具挑战性的问题,在常规操作条件下,当地空气和液体冷却剂的温度超过100°C。本文介绍了用于600V / 50-A碳化硅(SiC)电源模块(额定器件结温为175 C)的高热通量,射流冲击冷却的热交换器的开发工作,该器件用于双向电源转换在28V电池和300V直流总线之间。在入口温度为100 C时,水-乙二醇(WEG)冷却剂的总量为50体积%,是唯一可用的冷却剂。一排WEG冷却剂微喷口撞击在SiC模块的基板上。射流冲击冷却系统已经通过在替代模块上的实验研究进行了优化,并结合了高保真计算模型,以准确估算相关工作条件下的SiC器件结温。结果表明,在151W(最坏情况)的设计热负荷下,采用现成的商用(COTS)冷板冷却将SiC器件的结温从290 reducedC降低,而通过COTS微通道将SiC器件的结温从215 C降低用射流冲击冷却的热交换器以相同的流量将热交换器冷却至169C。

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