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Heat transfer characteristics of external ventilated path in compact high-voltage motor

机译:紧凑型高压电动机外部通风路径的传热特性

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This paper investigates the heat transfer characteristics of the external ventilated path of a compact, 6 kV, 4-pole, 2500 kW motor using flow-thermal coordination mechanism. A computational model is set up and validated by experimental test results. A series of simulation is performed. It is found that the deflection angle alpha and outlet angle beta of the fan blades are the key parameters affecting the efficiency of the cooling effect of the fan. Optimal measures are adopted by changing the deflection angle and outlet angle of fan blades. External fan efficiency is improved from 28.80% to 29.96% and outlet flow is increased by 0.08 m(3)/s by optimizing the deflection angle alpha and outlet angle beta. According to the optimization results of external fan, heat transfer characteristics and temperature distribution of the cooler is obtained by the fluid and temperature coupling field. The cooler is optimized by adjusting the height of the windshield, increasing the number of the windshield, changing the shape of inclined plate. It is found that the temperature of hyperthermal fluid of inner ventilated path is decreased from 75 degrees C to 53.7 degrees C; at the same time the temperature of cryogenic fluid of external ventilated path is increased from 23 degrees C to 49.4 degrees C. The outlet temperature of internal fluid of post-optimized cooler is dropped by 3 degrees C, and the external fluid temperature is increased by 2.5 degrees C. The performance of fan and the cooling effect is improved. The results from this study can provide an effective method for structural optimal design of compact high-voltage motors. (C) 2018 Elsevier Ltd. All rights reserved.
机译:本文利用流热协调机制研究了紧凑型6 kV,4极,2500 kW电动机的外部通风路径的传热特性。建立了计算模型,并通过实验测试结果进行了验证。执行一系列模拟。已经发现,风扇叶片的偏转角α和出口角β是影响风扇的冷却效果的效率的关键参数。通过改变风扇叶片的偏转角和出口角采取最佳措施。通过优化偏转角α和出口角β,外部风扇效率从28.80%提高到29.96%,出口流量增加0.08 m(3)/ s。根据外部风扇的优化结果,通过流体和温度耦合场获得了冷却器的传热特性和温度分布。通过调节挡风玻璃的高度,增加挡风玻璃的数量,改变倾斜板的形状来优化冷却器。发现内部通风路径的高温流体的温度从75摄氏度降低到53.7摄氏度;同时,外部通风路径的低温流体温度从23摄氏度增加到49.4摄氏度。优化后的冷却器内部流体的出口温度降低3摄氏度,外部流体温度升高3摄氏度。 2.5摄氏度。风扇的性能和冷却效果得到改善。这项研究的结果可以为紧凑型高压电动机的结构优化设计提供一种有效的方法。 (C)2018 Elsevier Ltd.保留所有权利。

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