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Design and Simulation of a Self-Calibration Based High Precision Angular Displacement Sensor

机译:基于自校准高精度角位移传感器的设计与仿真

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This paper presents an inductive based sensor for angular displacement measurement. Its structure is basically similar to a resolver, but it is able to provide high precision measurement by use of an online self-calibration method which is also presented in this paper. The sensor consists of a ferromagnetic stator, a ferromagnetic rotor and four groups of coils. Two groups of coils in the rotor are supplied with quadrature Alternating Current (AC) signals to generate quadrature magnetic fields both in temporal and spatial domains. The other two groups of coils in the stator receive magnetic fields to produce two sine signals whose phases are proportional to the displacement of the rotor. However, the phase of one sine signal changes faster than that of the other one with the changing of the displacement. Different phase changing causes different measurement errors. The paper provides an online self-calibration method using the relation of the errors and finally improves the accuracy of the sensor. Simulations of sensor models have been implemented to verify the feasibility of working principles of the sensor.
机译:本文介绍了用于角位移测量的基于电感的传感器。其结构基本上类似于旋转变压器,但它能够通过使用本文还介绍的在线自校准方法提供高精度测量。传感器由铁磁定子,铁磁转子和四组线圈组成。转子中的两组线圈被提供具有正交交流(AC)信号,以在时间和空间域中产生正交磁场。定子中的另外两组线圈接收磁场以产生两个正弦信号,其相位与转子的位移成比例。然而,一个正弦信号的阶段随着对位移的改变而比另一个的阶段变化。不同的相变导致不同的测量误差。本文提供了一种使用误差关系的在线自校准方法,最后提高了传感器的精度。已经实施了传感器模型的模拟以验证传感器的工作原理的可行性。

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