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Topology optimization for design of segmented permanent magnet arrays with ferromagnetic materials

机译:铁磁材料分段式永磁体阵列设计的拓扑优化

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HighlightsA co-design method of magnet segment and iron is proposed using topology optimization.A material interpolation scheme is proposed for multi-material representation.A penalization scheme is proposed to achieve segmented magnet arrays.The effectiveness of proposed design method is validated in three optimization examples.AbstractThis paper presents multi-material topology optimization for the co-design of permanent magnet segments and iron material. Specifically, a co-design methodology is proposed to find an optimal border of permanent magnet segments, a pattern of magnetization directions, and an iron shape. A material interpolation scheme is proposed for material property representation among air, permanent magnet, and iron materials. In this scheme, the permanent magnet strength and permeability are controlled by density design variables, and permanent magnet magnetization directions are controlled by angle design variables. In addition, a scheme to penalize intermediate magnetization direction is proposed to achieve segmented permanent magnet arrays with discrete magnetization directions. In this scheme, permanent magnet strength is controlled depending on magnetization direction, and consequently the final permanent magnet design converges into permanent magnet segments having target discrete directions. To validate the effectiveness of the proposed approach, three design examples are provided. The examples include the design of a dipole Halbach cylinder, magnetic system with arbitrarily-shaped cavity, and multi-objective problem resembling a magnetic refrigeration device.
机译: 突出显示 提出了一种使用拓扑优化的磁铁和铁片协同设计方法。 针对多项目提出了一种材料插值方案-材料表示。 提出了一种用于实现分段磁体阵列的惩罚方案。 验证了所提出设计方法的有效性在三个优化示例中。 摘要 本文介绍了用于永磁体和铁材料的协同设计的多材料拓扑优化。具体而言,提出了一种共同设计方法,以找到永磁体段的最佳边界,磁化方向的模式和铁的形状。针对空气,永磁体和铁材料之间的材料特性,提出了一种材料插值方案。在该方案中,永磁体的强度和磁导率由密度设计变量控制,永磁体的磁化方向由角度设计变量控制。此外,提出了一种惩罚中间磁化方向的方案,以实现具有离散磁化方向的分段式永磁体阵列。在该方案中,取决于磁化方向来控制永磁体强度,因此最终的永磁体设计收敛为具有目标离散方向的永磁体段。为了验证所提出方法的有效性,提供了三个设计示例。例子包括偶极哈尔巴赫圆柱体的设计,具有任意形状空腔的磁性系统以及类似于磁性制冷装置的多目标问题。

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