Numerical simulation of forces in an ironless planar actuator

M. J. Susin, A. F. Flores Filho, D. Dorrell
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Abstract

An electromagnetic planar actuator can be described as a device that produces movement on a plane and provides movement with a minimum of two degrees of freedom within an area of movement over that plane [1]. The concept of a planar actuator with an ironless armature is explored in this work. The device is based on a double mover with two pairs of two high-energy NdFeB permanent magnets. They produce a bidirectional movement over the plane formed by the armature with orthogonal windings. This is due to the interaction with the currents in the windings. Its topology is represented in Fig.1 (a). It consists of multiphase windings that are arranged to form two sets of orthogonal windings, i.e., a group of coils assembled in the x-axis forming the x-axis multiphase winding and the group of coils assembled in the y-axis forming the y-axis multiphase winding. Each layer of those multiphase windings is electrically isolated from the other, and each multiphase winding is divided into 6 independent coils or phases.
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无铁平面驱动器受力的数值模拟
电磁平面执行器可以被描述为在平面上产生运动并在该平面上的运动区域内提供至少两个自由度的运动的装置[1]。本文探讨了无铁电枢平面作动器的概念。该装置基于双动器和两对高能钕铁硼永磁体。它们在具有正交绕组的电枢形成的平面上产生双向运动。这是由于与绕组中的电流相互作用造成的。其拓扑结构如图1 (a)所示。它由多相绕组组成,并排列成两组正交绕组,即在x轴上组装的一组线圈形成x轴多相绕组,在y轴上组装的一组线圈形成y轴多相绕组。这些多相绕组的每一层都是电隔离的,每个多相绕组被分为6个独立的线圈或相。
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