Thermal analysis of direct air-cooled PM machine for UAV propulsion

R. Wróbel, A. Graham-Watson, C. Mason, N. Chakraborty, R. Zouein
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Abstract

This paper presents findings from a combined theoretical and computational thermal analysis of alternative heat removal concepts for an open-frame PM machine. The analysed machine design has been developed for propulsion of an unmanned aerial vehicle (UAV), which operates in a regime characterised by a high torque overload (  2.5) at take-off and a high efficiency (+95%) at high-altitude cruise operation. The thermal management of such a machine has a significant impact when balancing the design for a lightweight/compact solution. Here, direct air-cooling of the machine is analysed by focussing on the winding body that is the dominant heat source during the UAV’s take-off phase. As the airflow into the machine body is generated by the forward motion of the UAV, a careful consideration needs to be taken when guiding the air through the machine body. In this analysis, alternative airflow channelling via the stator-winding assembly is investigated. The results suggest that the proposed motor design with reduced conductor slot utilisation and stator bore airflow guiding feature allows for achieving the required convection heat transfer coefficient (75W/m 2 K at 1m/s), which is 150% improvement as compared with a more conventional design with a good conductor slot utilisation. However, the reduced conductor volume needs to be compensated for by appropriately adjusting the machine outer diameter and profile during the initial design sizing exercise.
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无人机推进用直接风冷永磁机热分析
本文提出了一种结合理论和计算热分析的结果,替代热消除概念的开放式永磁机床。所分析的机器设计已经发展用于一种无人驾驶飞行器(UAV)的推进,它在起飞时以高扭矩过载(2.5)和高空巡航操作时高效率(+95%)为特征的状态下运行。这种机器的热管理在平衡轻量级/紧凑型解决方案的设计时具有重大影响。在这里,通过关注缠绕体来分析机器的直接空气冷却,缠绕体是无人机起飞阶段的主要热源。由于进入机体的气流是由无人机的向前运动产生的,因此在引导空气通过机体时需要仔细考虑。在此分析中,研究了通过定子-绕组组件的替代气流通道。结果表明,减少导体槽利用率和定子腔气流引导特性的电机设计可以实现所需的对流换热系数(1m/s时75W/m 2k),与具有良好导体槽利用率的更传统设计相比,提高了150%。然而,减少的导体体积需要在初始设计过程中通过适当调整机器外径和外形来补偿。
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