In-slot Cooling for High Power Density Electric Motor with Encapsulation Channels

Zhaoxi Yao, R. Mandel, F. McCluskey
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Abstract

The desire to reduce carbon emissions, noise, and fuel consumption is driving recent research on electrification of traditional combustion power units. High power density motors are essential for large-scale, heavy-duty applications. To achieve high power density, thermal management systems are critical as, at elevated temperatures, electric motors are susceptible to reduced performance or even catastrophic failure.The stator winding is the primary heat source in high power motors and is the major challenge in cooling system design. Not only is controlling the temperature important for safe operation, but also the resistance of the winding increases with higher temperature, lowering the motor efficiency. As there is a high thermal conductive resistance between the windings and traditional cooling structures built on the outer surface of the motor, direct in-slot cooling is required to achieve the needed thermal management. In this paper, a novel in-slot cooling approach is discussed for a permanent magnet motor with power density higher than 22 kW/kg, based on active mass. In this approach, the stator slot, including the winding within, is encapsulated with high thermal conductivity potting material. Fluid channels are built directly into the winding turns by an investment casting process, reducing the thermal resistance between the winding and the coolant. A manufacturing process is proposed, and five different configurations are simulated and compared.
带封装通道的高功率密度电动机槽内冷却
减少碳排放、噪音和燃料消耗的愿望正在推动传统燃烧动力装置的电气化研究。高功率密度电机对于大规模、重型应用是必不可少的。为了实现高功率密度,热管理系统至关重要,因为在高温下,电动机容易降低性能甚至发生灾难性故障。定子绕组是大功率电机的主要热源,是冷却系统设计的主要难点。控制温度不仅对安全运行很重要,而且随着温度的升高,绕组的电阻也会增加,从而降低电机的效率。由于绕组与电机外表面的传统冷却结构之间存在较高的导热电阻,因此需要直接在槽内冷却以实现所需的热管理。本文针对功率密度大于22 kW/kg的永磁电机,提出了一种基于有效质量的槽内冷却方法。在这种方法中,定子槽,包括里面的绕组,都是用高导热的灌封材料封装的。流体通道通过熔模铸造工艺直接构建到绕组匝,减少了绕组和冷却剂之间的热阻。提出了一种制造工艺,并对五种不同的结构进行了仿真和比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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