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Analysis and Optimization of Ironless Permanent-Magnet Linear Motor for Improving Thrust

机译:无铁永磁直线电机的推力分析与优化

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As known, improving launcher thrust is the goal that the mankind is pursuing. There is no saturation phenomenon in the ironless permanent-magnet linear motor (IPMLM); hence, the thrust of IPMLM has a linear relationship with current through windings to provide larger thrust. The topology of IPMLM determines that its thrust fluctuation is smaller than that of an iron permanent-magnet linear motor. In this paper, the model of an air-gap magnetic field is established by the magnetic charge model and the image method for global optimization of IPMLM thrust. All dimensions of IPMLM are described by motor thickness and three ratio coefficients (i.e., $alpha$, $beta$ , and $gamma$). The cooling power of the cooling system under different temperature gradients, which determines current density of winding, is calculated by Comsol software. Different values of $alpha$, $beta$, and $gamma$ mean that each dimension of IPMLM is different, the current density in different windings being subject to constraint condition $p_{rm cu} leq Q$. Therefore, we can obtain the variation of current density with dimension and the variation of thrust with dimension. For obtaining maximum thrust in the same volume, the size ratio among magnetic structure, winding structure, and cooling structure is derived by the thrust analytical expression. The distribution of the IPMLM thermal field is analyzed by a 3-D finite-element method, and this optimization method of IPMLM thrust density is proved by experiment.
机译:众所周知,提高发射器推力是人类追求的目标。无铁永磁直线电机(IPMLM)没有饱和现象;因此,IPMLM的推力与通过绕组的电流具有线性关系,以提供更大的推力。 IPMLM的拓扑确定其推力波动小于铁永磁直线电机的推力波动。本文通过电荷模型和图像方法建立了气隙磁场模型,对IPMLM推力进行了全局优化。 IPMLM的所有尺寸均由电动机厚度和三个比率系数(即 $ alpha $ $ beta $ $ gamma $ )。由Comsol软件计算出不同温度梯度下冷却系统的冷却功率,该冷却功率决定了绕组的电流密度。 $ alpha $ $ beta $的不同值 $ gamma $ 表示IPMLM的每个维度都是不同的,不同的绕组受约束条件 $ p_ {rm cu} leq Q $ 。因此,我们可以获得电流密度随尺寸的变化和推力随尺寸的变化。为了在相同体积中获得最大推力,可通过推力解析表达式得出磁性结构,绕组结构和冷却结构之间的尺寸比。通过3-D有限元方法分析了IPMLM热场的分布,并通过实验证明了IPMLM推力密度的优化方法。

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