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Fully predictive heat transfer coefficient modeling of an axial flux permanent magnet synchronous machine with geometrical parameters of the magnets

机译:磁体几何参数的轴向磁通永磁同步机的完全预测传热系数模型

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This paper describes new correlations for the convective heat transfer assessment in an axial flux permanent magnet synchronous machine. The case-study here is composed of an open rotor-stator with sixteen magnets at the periphery of the rotor with an annular opening in the entire disk. Air can flow in a channel being formed between the magnets and in a small gap region between the magnets and the stator surface. The idea is to use the space in between adjacent rotor magnets as cooling air-channels. The rotor disk with the magnets then behaves as a centrifugal fan causing efficient air gap cooling. In order to construct the correlations, CFD simulations are performed at the practical ranges of important non-dimensional parameters including the gap size ratio (G = s/R), the rotational Reynolds number (Re = omega R-2/nu), the magnet angle ratio (alpha(m) = alpha x 16/360) and the magnet thickness ratio (L=t/R). Considering the geometric periodicity of the computational domain, only one magnet on the rotor disk is investigated. Moreover, the Frozen Rotor method is used to simulate the rotary motion of the rotor together with the fluid around it. Unlike most precedent studies that considered ambient temperature as the reference temperature, therefore making the estimated convective heat coefficient dependent on the surface temperature, a different approach has been taken into account here. The reference temperature is computed through a minimization method in such a way that the mean Nusselt number becomes rather independent of the surface temperatures. It is found that the proposed correlations can strongly predict the heat transfer rates for all surfaces within the machine at the practical ranges of the magnet geometrical parameters and other significant factors. A more clear insight about the heat transfer in the rotor-stator system in this type of electrical machine is presented. It is shown that the overall heat transfer improves significantly with an increase in the magnet thickness ratio, whereas the opposite trend is observed as the magnet angle ratio goes up. Moreover, the results reveal that the stator heat transfer in the gap reaches a maximum for a certain gap thickness. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文介绍了轴向磁通永磁同步机中对流传热评估的新相关性。这里的壳体研究由具有十六个磁体的开口转子定子组成,在转子的周边,在整个盘中具有环形开口。空气可以在形成在磁体之间的通道中和在磁体和定子表面之间的小间隙区域中流动。该想法是将相邻转子磁铁之间的空间用作冷却空气通道。具有磁体的转子盘然后作为离心风扇的表现为导致有效的气隙冷却。为了构建相关性,CFD仿真在包括间隙尺寸比(G = S / R)的重要非尺寸参数的实际范围内执行,旋转雷诺数(Re = Omega R-2 / Nu),磁体角比(α(m)= alpha x 16/360)和磁体厚度比(l = t / r)。考虑到计算域的几何周期,研究了转子盘上的一块磁铁。此外,冷冻转子方法用于模拟转子的旋转运动与其周围的流体一起。与最先前的研究不同,认为环境温度作为参考温度,因此在这里考虑了估计的对流热系数,在这里考虑了不同的方法。通过最小化方法计算参考温度,使得平均良好的数量变得相当独立于表面温度。结果发现,所提出的相关性可以在磁体几何参数的实际范围和其他重要因素的实际范围内强烈地预测机器内的所有表面的传热速率。提出了对这种电机转子定子系统中的传热更清晰的洞察力。结果表明,总热传递随着磁体厚度比的增加而显着改善,而随着磁体角度比上升,观察到相反的趋势。此外,结果表明,间隙中的定子传热达到了一定的间隙厚度的最大值。 (c)2016 Elsevier Ltd.保留所有权利。

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