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Temperature Field Accurate Modeling and Cooling Performance Evaluation of Direct-Drive Outer-Rotor Air-Cooling In-Wheel Motor

机译:直驱外转子风冷轮毂电机温度场精确建模与冷却性能评估

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High power density outer-rotor motors commonly use water or oil cooling. A reasonable thermal design for outer-rotor air-cooling motors can effectively enhance the power density without the fluid circulating device. Research on the heat dissipation mechanism of an outer-rotor air-cooling motor can provide guidelines for the selection of the suitable cooling mode and the design of the cooling structure. This study investigates the temperature field of the motor through computational fluid dynamics (CFD) and presents a method to overcome the difficulties in building an accurate temperature field model. The proposed method mainly includes two aspects: a new method for calculating the equivalent thermal conductivity (ETC) of the air-gap in the laminar state and an equivalent treatment to the thermal circuit that comprises a hub, shaft, and bearings. Using an outer-rotor air-cooling in-wheel motor as an example, the temperature field of this motor is calculated numerically using the proposed method; the results are experimentally verified. The heat transfer rate (HTR) of each cooling path is obtained using the numerical results and analytic formulas. The influences of the structural parameters on temperature increases and the HTR of each cooling path are analyzed. Thereafter, the overload capability of the motor is analyzed in various overload conditions.
机译:高功率密度外转子电动机通常使用水或油冷却。无需流体循环装置,外转子风冷电机的合理热设计可以有效地提高功率密度。对外转子风冷电动机的散热机理的研究可以为选择合适的冷却方式和冷却结构设计提供指导。这项研究通过计算流体动力学(CFD)研究了电动机的温度场,并提出了一种克服建立精确温度场模型困难的方法。所提出的方法主要包括两个方面:一种用于计算层流状态下气隙的等效热导率(ETC)的新方法,以及对包括轮毂,轴和轴承的热回路的等效处理。以外转子风冷轮毂电动机为例,采用所提出的方法对电动机的温度场进行数值计算。结果经过实验验证。使用数值结果和解析公式可以得出每个冷却路径的传热率(HTR)。分析了结构参数对温度升高和每个冷却路径的HTR的影响。此后,在各种过载条件下分析电动机的过载能力。

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