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Torque Ripple Modeling and Minimization for Interior PMSM Considering Magnetic Saturation

机译:考虑磁饱和的内部PMSM转矩脉动建模和最小化

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摘要

Torque ripple modeling and minimization for interior permanent magnet synchronous machines (IPMSMs) requires accurate information of the inductances, which vary nonlinearly due to magnetic saturation. However, existing approaches fail to consider the magnetic saturation and, thus, their performance are limited under different load conditions. Therefore, this paper improves the torque ripple model by considering magnetic saturation, and employs this model for the optimal current design to improve the performance of torque ripple minimization for IPMSMs under different load conditions. At first, numerical studies are performed to analyze and understand how magnetic saturation affects the torque ripples in IPMSMs. Then, a novel torque ripple model for IPMSMs is developed, in which the inductance term is replaced by exploring the machine electrical model. This improved torque ripple model is computationally efficient and it can provide fast and accurate torque ripple prediction. Based on this model, a genetic algorithm (GA)-based optimal stator current design approach is proposed to minimize the torque ripple in IPMSMs. The proposed GA-based approach can adaptively optimize the stator current under different load conditions, which can guarantee the robust performance of torque ripple minimization under different saturation levels. The proposed approach is validated through an experimental test on a laboratory IPMSM drive system.
机译:内部永磁同步电机(IPMSM)的转矩脉动建模和最小化需要准确的电感信息,这些电感会因磁饱和而非线性变化。但是,现有方法无法考虑磁饱和,因此在不同负载条件下其性能受到限制。因此,本文通过考虑磁饱和来改进转矩脉动模型,并将该模型用于最优电流设计,以改善不同负载条件下IPMSM的转矩脉动最小化性能。首先,进行数值研究来分析和理解磁饱和如何影响IPMSM中的转矩脉动。然后,开发了一种新型的IPMSM转矩脉动模型,其中通过研究电机电气模型来代替电感项。这种改进的转矩脉动模型计算效率高,并且可以提供快速而准确的转矩脉动预测。基于该模型,提出了一种基于遗传算法(GA)的最佳定子电流设计方法,以最小化IPMSM中的转矩脉动。所提出的基于遗传算法的方法可以在不同负载条件下自适应地优化定子电流,从而可以保证在不同饱和度下转矩脉动最小化的鲁棒性能。通过在实验室IPMSM驱动系统上进行的实验测试验证了所提出的方法。

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