Numerical and Experimental Investigation on Centrifugal Cooling Fan in a Traction Motor

X. Qu, J. Tian, Tong Wang
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Abstract

High-speed train is developing popular in China, which provides the convenient and fast transportation way, comparable to plane. The moving direction and speed of high-speed train is decided by the traction motor. Generally, a coaxial centrifugal fan is used to cool the motor and assemble in the motor casing. To ensure the reliability of the traction motor, more and more attention is paid to improve the performance of cooling fans in a wide range of rotating speed. As the train is designed to move in both directions, the traction motor is designed to rotate in both directions, so does the coaxial motor cooling fan. Symmetrical and straight blade structure is adopted to get the same performance of the fan in both forward and reverse moving directions. Therefore, the aerodynamic performance of the cooling fan is relatively not good enough, which results in relatively high aerodynamic noise. In order to analyze the cooling fan aerodynamic performance and aerodynamic noise, CFD method was performed on the full 3D model with the impeller-casing clearance. The acoustic analogy method was used to analyze the noise of the centrifugal cooling fan. In addition, the aerodynamic noise of the motor with the cooling fan was tested at different rotating speed in the semi-anechoic lab. The CFD method is verified and the results are in good agreement with the experimental results. The results show that it is necessary to consider the effects of impeller-casing leakage and the vacuum inlet condition in the simulated model to get its more accurate performance. Modified CFD model of the cooling fan was proposed here. It is suggested that the modified structure of the casing can be used to improve the performance of the cooling fan and reduce the corresponding aerodynamic noise.
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牵引电动机离心冷却风扇的数值与实验研究
高铁在中国正在发展普及,它提供了与飞机相媲美的方便快捷的交通方式。高速列车的运行方向和速度是由牵引电机决定的。一般采用同轴离心风机对电机进行冷却,并装配在电机机壳内。为了保证牵引电机的可靠性,提高冷却风扇在大转速范围内的性能越来越受到人们的重视。由于列车设计为双向运行,牵引电机设计为双向旋转,同轴电机冷却风扇也设计为双向旋转。采用对称直叶结构,使风机在正反向均能获得相同的性能。因此,冷却风扇的气动性能相对不够好,从而导致气动噪声相对较高。为了分析冷却风扇的气动性能和气动噪声,对考虑叶轮-机匣间隙的全三维模型进行了CFD分析。采用声学类比法对离心冷却风机的噪声进行了分析。此外,在半消声实验室中测试了带冷却风扇的电机在不同转速下的气动噪声。对CFD方法进行了验证,结果与实验结果吻合较好。结果表明,仿真模型需要考虑叶轮机匣泄漏和真空进口条件的影响,以获得更准确的性能。提出了改进的冷却风扇CFD模型。建议采用改进的机匣结构来提高冷却风扇的性能,降低相应的气动噪声。
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