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A seminumerical finite-element postprocessing torque ripple analysis technique for synchronous electric machines utilizing the air-gap Maxwell stress tensor.

机译:利用气隙麦克斯韦应力张量的同步电机的半数值有限元后处理转矩脉动分析技术。

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摘要

A novel method to calculate the harmonic torque components in synchronous machines is presented. Harmonic torque components create a torque ripple, which is undesirable in many applications. This torque ripple is a major cause of acoustic noise and vibration and can limit the machine's application range. A seminumerical method is developed to calculate and analyze harmonic torque components based on Maxwell stress tensor theory. Development of the Maxwell stress expressions leads to a simple algebraic expression for the calculation. Finite-element (FE) analysis is used to determine the equation variables. It is shown that postprocessing of the FE solution provides valuable information regarding the composition of the torque waveform, based upon field harmonics, which was previously unavailable. A deeper insight can be gained into more direct electromagnetic design changes to reduce torque ripple in synchronous machines, improving their torque quality. As an example, the developed method is applied to a synchronous reluctance machine with fractional slot concentrated windings that is known to exhibit high torque ripple.
机译:提出了一种计算同步电机谐波转矩分量的新方法。谐波转矩分量会产生转矩波动,这在许多应用中是不希望的。转矩脉动是引起噪音和振动的主要原因,并且会限制机器的应用范围。提出了一种基于麦克斯韦应力张量理论的半数值计算和分析谐波转矩分量的方法。麦克斯韦应力表达式的发展导致了用于计算的简单代数表达式。有限元(FE)分析用于确定方程变量。结果表明,有限元解决方案的后处理基于以前无法获得的场谐波,提供了有关转矩波形组成的有价值的信息。通过更直接的电磁设计更改可以减少同步电机中的转矩脉动,从而提高转矩质量,从而获得更深入的了解。例如,将所开发的方法应用于具有分数槽集中绕组的同步磁阻电机,该绕组已知具有高转矩纹波。

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