A novel magnetic circuit and structure for magnetic levitation ruler

Jiyuan Sun, Pin Li, Yanbin Zheng, Chunlin Tian, Zhenxiong Zhou
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Abstract

The single axis linear displacement measurement system of CMM is composed of grating ruler, servo motor and linear motion mechanism. Although the measuring accuracy of grating ruler is high, the accuracy of servo motor and linear motion mechanism is low. Therefore, the complex structure limits the measurement accuracy of the linear displacement measurement system. This paper introduces a novel linear displacement measurement system named magnetic levitation ruler. According to the working principle of grating ruler and the characteristics of magnetic levitation technology, the magnetic circuit design and structural design of magnetic levitation ruler are completed in this paper. The mover core of the magnetic levitation ruler is in the stable working magnetic field provided by the stator yoke. The horizontal control coil wound on the mover core can obtain more stable ampere force to improve the control accuracy of the mover core displacement. Therefore, the mover core can be moved in step mode, and the length of each step is fixed. Each step is the minimum scale of the magnetic levitation ruler. Therefore, the mover core can implement displacement measurement while moving in a linear motion. This paper analyzes the working principle of levitation, horizontal motion, and displacement measurement of magnetic levitation ruler, and determines the structural materials and parameters of magnetic levitation ruler with the help of finite element analysis software. The simulation results show that the levitation force of the magnetic levitation ruler is proportional to the current passing through the levitation coils, and the thrust of the horizontal control coil is less disturbed by the magnetic field. Compared with the linear displacement measurement system with rotational servo motor or permanent magnet synchronous linear motor as the core, the magnetic levitation ruler has stable magnetic field, strong controllability, high integration, and is easier to achieve high-precision control.
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一种新型磁悬浮尺磁路及结构
三坐标测量机单轴直线位移测量系统由光栅尺、伺服电机和直线运动机构组成。虽然光栅尺的测量精度高,但伺服电机和直线运动机构的测量精度较低。因此,复杂的结构限制了线性位移测量系统的测量精度。介绍了一种新型的直线位移测量系统——磁悬浮尺。根据光栅尺的工作原理和磁悬浮技术的特点,完成了光栅尺的磁路设计和结构设计。磁悬浮尺的动铁芯处于定子轭提供的稳定工作磁场中。绕在动铁心上的水平控制线圈可以获得更稳定的安培力,提高动铁心位移的控制精度。因此,动铁芯可以步进方式移动,并且每步的长度是固定的。每一步都是磁悬浮尺的最小刻度。因此,动芯可以在直线运动时实现位移测量。本文分析了磁悬浮尺的悬浮工作原理、水平运动和位移测量,并借助有限元分析软件确定了磁悬浮尺的结构材料和参数。仿真结果表明,磁悬浮尺的悬浮力与通过悬浮线圈的电流成正比,水平控制线圈的推力受磁场干扰较小。与以旋转伺服电机或永磁同步直线电机为核心的直线位移测量系统相比,磁悬浮尺磁场稳定,可控性强,集成度高,更容易实现高精度控制。
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