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Partial Discharge Investigation of Form-Wound Electric Machine Winding for Electric Aircraft Propulsion

机译:用于电气飞机推进的缠绕电机绕组局部排放调查

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Electric machines with high specific power are crucial for the more electric aircraft propulsion. However, the harsh operating environment such as low air pressure and high temperature will challenge the motor's insulation system and cause partial discharge (PD), which threatens the reliability of the machine. This article proposes a PD-free stator winding design regarding an air-core high-frequency permanent magnet synchronous machine for aircraft propulsion. The experiment and simulation are performed under sinusoidal voltage due to the power quality requirement by the standard for aircraft. PD inception voltage (PDIV) with respect to air pressure and temperature was obtained experimentally for form-wound windings and was analyzed to derive the PD-free criteria. A 3-D stator model was built and used to simulate the electric field and temperature distributions with a finite-element method. In addition, the effect of voids and delamination on electric field distortion was also taken into consideration to allow for a safety margin and meet the PD-free requirement. To achieve high-specific-power requirement and PD-free requirement simultaneously, a multiobjective genetic algorithm was adopted to perform the optimization and obtain the Pareto fronts at various air pressures. Finally, the PDIV value of the designed winding was measured to verify the PD-free design. The main purpose is to combine the experimental results and the simulation tool to obtain an acceptable PD-free design in the meantime achieving high power density, which may provide helpful guidance on motor insulation design for the more electric aircraft propulsion.
机译:具有高特定功率的电机对于更具电气飞机推进来说至关重要。然而,诸如低空气压力和高温的苛刻操作环境将挑战电机的绝缘系统并导致局部放电(PD),这威胁到机器的可靠性。本文提出了一种关于飞机推进空气高频永久磁铁同步机的无PD定子绕组设计。由于飞机标准的功率质量要求,在正弦电压下进行实验和模拟。 PD初始电压(PDIV)相对于空气压力和温度进行实验地用于形成缠绕绕组,并分析以导出无PD的标准。建立了三维定子模型,并用于模拟电场和具有有限元方法的电场和温度分布。此外,还考虑了空隙和分层对电场变形的影响,以允许安全裕度并满足无需PD的要求。为了同时实现高特定功率要求和PD无需PD的要求,采用多目标遗传算法进行优化,并在各种空气压力下获得帕累托前线。最后,测量了设计绕组的PDIV值以验证无PD的设计。主要目的是将实验结果和仿真工具结合在一起,以实现高功率密度的接受时间获得可接受的PD-PED设计,这可能为更频道的电气飞机推进提供有用的电动机绝缘设计指导。

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