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An Analytical Solution to Optimal Stator Current Design for PMSM Torque Ripple Minimization With Minimal Machine Losses

机译:具有最小机器损耗的PMSM转矩纹波最小化的最佳定子电流设计的解析解决方案

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This paper investigates torque ripple minimization for permanent-magnet synchronous machines (PMSM), and proposes a novel analytical solution of optimal stator current design for torque ripple minimization. The proposed design is theoretically proven to be able to minimize the torque ripple with minimal machine losses. Moreover, the optimal stator current is computed from analytical expression, which is computationally efficient. Therefore, the proposed approach is applicable for torque ripple minimization under both transient state and steady state. However, existing approaches usually employ optimization algorithm to optimize the stator current, which is computationally complex and involves iterative computation, so their applicability is limited under transient state, because the optimal stator current must be adaptively updated with respect to operating conditions. Moreover, magnetic saturation is considered in the proposed approach by employing a novel linear model to model the relation between the inductance and the stator current under maximum torque per ampere (MTPA) control. In this way, the proposed analytical solution does not involve inductance, and thus, the influence of magnetic saturation can be effectively reduced. The proposed approach is validated on a laboratory PMSM drive system under both transient state and steady state.
机译:本文研究了永磁同步电机(PMSM)的转矩脉动最小化,并提出了一种用于减小转矩脉动的最佳定子电流设计的新颖解析解决方案。理论上证明了所提出的设计能够在最小的机器损耗的情况下最小化转矩脉动。而且,最佳定子电流由解析表达式计算出,这在计算上是有效的。因此,所提出的方法适用于瞬态和稳态下的转矩脉动最小化。然而,现有的方法通常采用优化算法来优化定子电流,这在计算上是复杂的并且涉及迭代计算,因此它们的适用性在瞬态下受到限制,因为必须相对于工作条件自适应地更新最佳定子电流。此外,在提出的方法中考虑了磁饱和,方法是采用新颖的线性模型来建模在最大每安培转矩(MTPA)控制下电感与定子电流之间的关系。这样,所提出的分析解决方案不涉及电感,因此,可以有效地减小磁饱和的影响。所提出的方法在瞬态和稳态下均在实验室PMSM驱动系统上得到了验证。

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