精密电机定子绕组建模的有效冷却概念的热分析

IF 0.7 Q4 TRANSPORTATION SCIENCE & TECHNOLOGY
Nicolas Brossardt, Thinh Nguyen-Xuan, M. Pfitzner
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引用次数: 0

摘要

随着电动汽车和混合动力汽车的发展,人们越来越关注高功率密度电机的发展。这些机器虽然效率很高,但在运行过程中发热严重。通过设计,最先进的水套冷却概念主要通过电机的高内部热阻来去除热量。在末端绕组区域产生的最高温度限制了可实现的机器功率输出。在这项研究中,提出了替代的冷却概念,有效地利用了现有的电机热传导路径。为此,开发了两种定子绕组的建模方法:一种是考虑每根电线的高分辨率方法,另一种是使用恒定各向异性导热系数区域来指定绕组中的热流的抽象方法。两种模型均用于BMW i3集成电机的长期热测试的共轭传热模拟。对两种模型的验证表明,模拟温度和测量温度非常吻合。对两种方法的评估表明,抽象方法比当前研发中使用的其他仿真方法更有效。它在替代冷却概念中的应用揭示了在不同流体温度下对末端绕组进行单一对流冷却所需的传热系数。然而,可以发现,只有采用水套冷却和对流端部绕组冷却相结合的方式,才能实现机器定子内温度均匀分布。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Precise Electrical Machine Stator Winding Modeling for Thermal Analysis of Efficient Cooling Concepts
The current development of electric and hybrid electric vehicles has drawn more attention toward the development of electrical machines with high power densities. Though highly efficient, these machines heat up significantly during operation. By design, state-of-the-art water jacket cooling concepts remove the heat mainly through high internal thermal resistances of the electrical machine. The resulting maximum temperatures in the end winding region limit the achievable machine power output. In this study, alternative cooling concepts are presented, which efficiently use the existing heat conduction paths of an electric machine. For this purpose, two modeling methods for the stator windings were developed: a high-resolution approach that considers each individual wire and an abstract approach that uses zones of constant anisotropic thermal conductivity to specify the heat flow in the windings. Both models were used in conjugate heat transfer simulations of a long-term thermal test of the electrical machine integrated in the BMW i3. For both models the validation showed a very good agreement of simulated and measured temperatures. An evaluation of both methods showed the abstract approach to be more efficient than other simulation methods used in the current R&D. Its application for alternative cooling concepts revealed the necessary heat transfer coefficients at different fluid temperatures for a sole convective cooling of the end windings. However, it could be found that a homogeneous temperature distribution in the stator of the machine can only be achieved if a combination of water jacket cooling and convective end winding cooling is used.
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来源期刊
SAE International Journal of Electrified Vehicles
SAE International Journal of Electrified Vehicles Engineering-Automotive Engineering
CiteScore
1.40
自引率
0.00%
发文量
15
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