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Design of Magnetic Actuator With Nonlinear Ferromagnetic Materials Using Level-Set Based Topology Optimization

机译:基于能级集的拓扑优化设计非线性铁磁材料电磁执行器

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摘要

In the practical design of magnetic actuators, the effect of magnetic saturation usually plays an important role. This paper proposes a new computation approach for identifying the optimal configuration of a magnetic actuator to deal with saturation of the ferromagnetic material. A level-set method for topology optimization in magnetic fields is employed to represent the material boundary considering nonlinear $B{hbox{-}}H$ characteristics. Design of magnetic actuators is mathematically formulated as a general optimization problem for maximizing magnetic energy in the air gap between armature and yoke under the limited usage of ferromagnetic material. The nonlinear magnetostatic finite element analysis where transient eddy current effects are ignored and the associated design sensitivity analysis are performed. The movement of the implicit boundaries of the ferromagnetic material is driven by the normal velocity derived from optimality and convergence conditions of level-set equation. The validity and effectiveness of the proposed method are illustrated with 2D examples that are widely used in the literature.
机译:在磁致动器的实际设计中,磁饱和效应通常起着重要作用。本文提出了一种新的计算方法,用于确定磁致动器的最佳配置以应对铁磁材料的饱和。考虑到非线性$ B {hbox {-}} H $特性,采用了一种在磁场中进行拓扑优化的水平集方法来表示材料边界。磁致动器的设计在数学上被公式化为一个通用的优化问题,用于在铁磁材料使用受限的情况下最大化电枢和磁轭之间气隙中的磁能。非线性静磁有限元分析忽略了瞬时涡流效应,并进行了相关的设计灵敏度分析。铁磁材料隐含边界的运动是由水平集方程的最优性和收敛条件得出的法向速度驱动的。该方法的有效性和有效性通过文献中广泛使用的2D实例进行了说明。

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