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Analysis of armature inter-turn fault in the multiphase synchronous generator-rectifier system

机译:多相同步发电机整流系统电枢匝间故障分析

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The multiphase synchronous generator-rectifier system could provide an ideal DC power source for more electric aircraft (MEA). When the inter-turn short-circuit fault occurs in phase windings of the generator, a large short-circuit current would be introduced inside the armature windings, which could cause severe damages to the system for overheat in the windings and irons as well as huge electromagnetic forces on the end coils. To improve the reliability of the MEA, this study researches on the inter-turn fault of the multiphase generator-rectifier system including the theoretical analysis, numerical simulation and experiment verification. A 12-phase system is taken, for example, and a multi-loop mathematical model is built up to calculate all voltages and currents in the multiphase synchronous generator-rectifier system with armature inter-turn fault. Many factors are thoroughly considered in the model including the location and short turns of fault, space harmonics of the air-gap magnetic field and the changing circuit topology of the system. Moreover, the mathematical model is verified by fault experiment results. Moreover, the electric characteristics of the fault are summarised, which could provide a quantitative basis for early detection of the inter-turn faults in the multiphase generator-rectifier system.
机译:多相同步发电机-整流器系统可以为更多的电动飞机(MEA)提供理想的直流电源。当发电机的相绕组中发生匝间短路故障时,大的短路电流会引入电枢绕组内部,这可能会对系统造成严重损害,因为绕组和铁芯会过热,甚至巨大末端线圈上的电磁力。为了提高MEA的可靠性,本研究对多相发电机-整流器系统匝间故障进行了理论分析,数值模拟和实验验证。以一个12相系统为例,建立了一个多回路数学模型来计算具有电枢匝间故障的多相同步发电机-整流器系统中的所有电压和电流。该模型中充分考虑了许多因素,包括故障的位置和短匝,气隙磁场的空间谐波以及系统的电路拓扑变化。此外,通过故障实验结果验证了该数学模型。总结了故障的电气特性,可以为多相发电机-整流系统中的匝间故障的早期检测提供定量依据。

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