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COOLING PERFORMANCE OF 25 KW IN-WHEEL MOTOR FOR ELECTRIC VEHICLES

机译:电动汽车25 KW轮毂电动机的冷却性能

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The in-wheel motor used in electric vehicles was designed and constructed for an electric direct-drive traction system. It is difficult to connect cooling water piping to the in-wheel motor because the in-wheel motor is located within the wheel structure. In the air cooling structure for the in-wheel motor, an outer surface on the housing is provided with cooling grooves to increase the heat transfer area. In this study, we carried out the analysis on the fluid flow and thermal characteristics of the in-wheel motor for various motor speeds and heat generations. In order to resolve heat release, the analysis has been performed using conjugate heat transfer (conduction and convection). As a result, flow fields and temperature distribution inside the in-wheel motor were obtained for base speed condition (1250 rpm) and maximum speed condition (5000 rpm). The thermo-flow analysis of the in-wheel motor for vehicles was performed in consideration of ram air effect. Also, in order to improve cooling effect of the motor, we variously changed geometries of housing. Therefore, we confirmed the feasibility of the air cooling for the motors of 25 kW capacity with housing geometry having cooling grooves and investigated the cooling performance enhancement. We found that the cooling effect was most excellent, in case that cooling groove direction was same with air flow direction and arranged densely.
机译:电动汽车用轮毂电机是为电动直接驱动牵引系统设计和制造的。由于轮内马达位于轮结构内,因此难以将冷却水管路连接至轮内马达。在用于轮内电动机的空气冷却结构中,壳体的外表面设置有冷却槽以增加热传递面积。在这项研究中,我们针对各种转速和热量的产生,对轮毂电机的流体流动和热特性进行了分析。为了解决热量释放问题,已使用共轭传热(传导和对流)进行了分析。结果,对于基本速度条件(1250rpm)和最大速度条件(5000rpm),获得了轮内电动机内部的流场和温度分布。考虑到冲压空气效应,对车辆的轮毂电动机进行了热流分析。另外,为了提高电动机的冷却效果,我们改变了壳体的几何形状。因此,我们确认了在具有冷却槽的壳体几何形状的情况下,对容量为25 kW的电动机进行空气冷却的可行性,并研究了冷却性能的提高。我们发现,在冷却槽方向与空气流动方向相同且排列密集的情况下,冷却效果最佳。

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