混合动力驱动中牵引电机的直接油冷却

Zhe Huang, S. Nategh, M. Alakula, V. Lassila, Jinliang Yuan
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引用次数: 55

摘要

本文介绍了采用直接油冷却方式和传统间接油冷却方式对安装在混合动力汽车或零排放汽车上的电动机的比较。采用FLUENT的有限体积计算流体动力学(CFD)模型和JMAG的有限元电磁模型,使仿真更加准确和全面。在相同的流量、速度和压降条件下,计算了不同冷却方式下定子背面的平均温度、进出口压降和冷却管道上的平均换热系数。此外,采用JMAG模型分析了壳体和定子后部的冷却管对电机转矩和功率性能的影响。直接冷却电机的定子背温升较低,因为冷却剂与定子背直接接触可以避免定子背与机壳之间产生不必要的热接触电阻,同时使冷却剂更接近热源,从而提高冷却效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Direct oil cooling of traction motors in hybrid drives
This paper presents comparisons of utilizing direct oil cooling approaches and conventional indirect cooling approaches for electrical motors which are mounted in HEVs or ZEVs. Both finite volume Computational Fluid Dynamic (CFD) model by FLUENT and finite element electromagnetic model by JMAG are applied to make the simulation accurate and comprehensive. Average temperature over the stator back, pressure drop between inlet and outlet and average heat transfer coefficient over the cooling duct are evaluated under identical flow rate, velocity and pressure drop for different cooling approaches. In addition, the influences on torque and power performances by the cooling ducts made in the housing or stator back are evaluated by JMAG model. The directly cooled motors show lower temperature rises at the stator back since the direct contact between coolant and stator back can avoid the unnecessary thermal contact resistances between the stator back and housing, meanwhile make the coolant more close to the heat sources, and thus improve the cooling efficiency.
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