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An optimal design of magnetic actuators using topology optimization and the response surface method

机译:基于拓扑优化和响应面法的电磁执行器优化设计

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摘要

The magnetic actuator is a device that transforms electric energy to mechanical energy. By mechanical energy transformation, some part of the electric energy creates force, and the other part is stored within the ferrous material. An actuator with improved magnetic force can be designed by reducing the stored energy within the ferrous material at the core or the armature. Topology optimization based on the homo-genization design method (HDM) is used for the initial design by determining the porous hole size of each element created. The homogenized magnetic permeability is applied in calculation of the magnetic energy stored. The magnetic energy is calculated by finite element analysis and the sensitivity is calculated mathematically by determining the effects of the magnetic energy according to the permeability change at each element. Repeating the process of the porous hole size determination by the sequential linear programming (SLP), eventually leads to a design of an actuator that makes the most improved magnetic force within the limited volume. The initial actuator model derived from topology optimization uses parameter optimization for detail designs. In parameter optimization design, the response surface method (RSM) based on the central composite design is used to obtain a clear final design.
机译:磁致动器是将电能转换为机械能的装置。通过机械能转换,一部分电能会产生力,而另一部分则存储在含铁材料中。可以通过减少铁芯或电枢处含铁材料内的存储能量来设计具有改进磁力的执行器。通过确定所创建的每个元素的多孔尺寸,将基于均质化设计方法(HDM)的拓扑优化用于初始设计。均质的磁导率用于计算存储的磁能。磁能通过有限元分析来计算,灵敏度是通过根据每个元素的磁导率变化确定磁能的影响来数学计算的。重复通过顺序线性编程(SLP)确定多孔孔大小的过程,最终导致了执行器的设计,该执行器在有限的体积内产生了最大的磁力。从拓扑优化得出的初始执行器模型将参数优化用于详细设计。在参数优化设计中,基于中央复合设计的响应面法(RSM)用于获得清晰的最终设计。

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