准halbach磁化pm的T-LSM气隙磁通密度分布预测:在齿槽力最小化中的应用

Mohamed Wael Zouaghi, I. Abdennadher, A. Masmoudi
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引用次数: 5

摘要

本文研究了一种基于双尺寸的方法,以使具有准哈尔巴赫磁化永磁同步电机的管状直线同步电机(T-LSM)的啮合力最小。对空载气隙磁通密度的空间再分配进行了预测。然后,根据预测的空载气隙磁通密度的空间再分配,考虑(i)“无限”长度机器的情况和(ii)有限长度机器的情况,开发了齿槽力的公式。一个案例研究,对应于一个初始概念,重点是预测其空载气隙磁通密度及其齿槽力的空间再分配。在此基础上,将研究扩展到考虑“无限”长度机床的第一次齿槽力减小过程。它包括对两个进水施胶参数对齿槽力的影响的研究,从而能够确定一个预先优化的概念。然后,在有限长度机器的情况下,预测后者的齿槽力。该研究是通过第二次齿槽力减小程序实现的,包括准消除末端效应。利用准halbach磁化pm对优化后的T-LSM的齿槽力进行预测,清楚地证明了所提出的基于双尺寸方法的有效性。
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Prediction of the air gap flux density distribution of a T-LSM with quasi-Halbach magnetized PMs: Application to the cogging force minimization
The paper is aimed at a dual sizing-based approach to minimize the cogging force of a tubular linear synchronous machine (T-LSM) with quasi-Halbach magnetized PMs in the mover. The study is initiated by the prediction of the spatial repartition of the no-load air gap flux density. Then, a formulation of the cogging force, based on the predicted spatial repartition of the no-load air gap flux density, is developed, considering (i) the case of an “infinite” length machine and (ii) the case of a finite length one. A case study, corresponding to an initial concept, is treated with a focus on the prediction of its spatial repartition of the no-load air gap flux density and its cogging force. With this done, the study is extended to a first cogging force reduction procedure considering the case of an “infinite” length machine. It consists in the investigation of the effects of two influent sizing parameters on the cogging force, that enables the identification of a pre-optimized concept. The cogging force of this latter is then predicted in the case of a finite length machine. The study is achieved by a second cogging force reduction procedure, consisting in a quasi-cancellation of the end effect. The prediction of the cogging force of the optimized T-LSM with quasi-Halbach magnetized PMs has clearly demonstrated the effectiveness of the proposed dual sizing-based approach.
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