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Prediction and Measurement of the Heat Transfer Coefficient in a Direct Oil-Cooled Electrical Machine With Segmented Stator

机译:分段定子直接油冷电机传热系数的预测与测量

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The heat transfer coefficient (HTC) is a critical parameter that is required for accurate thermal modeling of electrical machines. This is often achieved from empirical correlations of ideal geometries or computational fluid dynamics (CFD) simulations. This paper presents a novel technique using double-sided thin film heat flux gauges for measuring the HTC from a direct oil-cooled electrical machine with segmented stator. While thin film gauges are often used in transient measurements of the HTC on gas turbine components, their application to electrical machines has been largely unexplored. This is the topic of this paper. Due to the large viscosity of the coolant, the transient technique was found to be inadequate and a steady-state adaptation for oil-cooled machines was developed. This paper explores the challenges linked with this measurement technique when applied to oil-cooled machines, and develops new nondimensional correlations of the Nusselt number with Reynolds number. These correlations are applicable to machines with different geometries, flow, and coolant properties. The experimental results were compared to CFD simulations and existing pipe flow correlations. It is shown that these underpredict the HTC by approximately 60% at Re = 20. The discrepancy gradually decreases to around 10% at Re = 200.
机译:传热系数(HTC)是电机精确热建模所需的关键参数。这通常是通过理想几何形状的经验相关性或计算流体动力学(CFD)模拟来实现的。本文介绍了一种使用双面薄膜热通量计的新颖技术,该技术用于从带分段定子的直接油冷式电机中测量HTC。尽管薄膜量规通常用于对燃气轮机部件上的HTC进行瞬态测量,但在电气设备中的应用尚未得到广泛探索。这是本文的主题。由于冷却液的粘度大,因此发现过渡技术不充分,因此开发出了适用于油冷式机器的稳态调节器。本文探讨了将这种测量技术应用于油冷式机器时所面临的挑战,并开发了Nusselt数与Reynolds数的新的无量纲相关性。这些相关性适用于具有不同几何形状,流量和冷却剂特性的机器。将实验结果与CFD模拟和现有的管道流量相关性进行了比较。结果表明,这些在Re = 20时低估了HTC大约60%。在Re = 200时,差异逐渐减小到大约10%。

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