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Sensor-less flux determination in induction motor based upon saturation effects using high-frequency magnetizing current.

机译:使用高频励磁电流基于饱和效应的感应电动机无传感器通量确定。

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摘要

As real-time computation costs continually decline, both mechanical robustness and economic considerations increasingly favor the replacement of mechanical sensors and transducers by software-based state estimation methods. The elimination of encoders or resolves on induction machine drives is a prime example. For high performance induction motor drives based on 'field-orientation', it is necessary to determine the angle of a magnetic flux vector inside the induction machine (rotor, stator, air-gap) with respect to a stator frame. When this is done without a flux sensor and without a rotor speed/position sensor, the voltage/current, or v/i-model, is the means of determining this flux angle. The v/i-model has drift problems, especially at low flux frequencies. By analyzing the v/i-model in the magnetic field coordinates instead of the fixed stator coordinates, the drift problem becomes a stability problem. Internal feedback methods still leave an operation area where such sensor-less control performance is low: the area around zero flux frequency [1]. In this frequency range the high frequency magnetizing current injection method can provide a way of determining the flux angle, even at zero flux frequency. This method is based upon saturation effects inside the induction machine and its structure is the basis of this proposal.;Prior to this work, existing control methods by injecting high frequency estimation techniques for machines were design dependent [1,2--7]. Furthermore, the limitations of these existing and also newly emerging observer-based estimation techniques were not well understood nor well applied. This work first focuses on evaluating and improving the rotor flux estimation from stator voltage and currents for standard induction machines, without modification to rotor design. In this work, recent developments in the saturated model of induction machines and their use for obtaining the coned location of the rotor magnetic flux for the induction motor are considered. In particular, the motion of stator current vector is transformed to the motion of the rotor current vector through a transformation ratio obtained from the motor magnetic saturation and the motion of the rotor current vector information is extracted from the motor voltage equations [3]. The method is based upon an effect that appears in the region of magnetic saturation. The transfer properties are derived from the equations of current fed (current regulated) induction machines taking saturation into account. Simulation results are presented to show that the algorithm combined with the saturated effect has promising results and would be able to achieve the zero speed control of sensor-less induction motor.
机译:随着实时计算成本的不断下降,机械鲁棒性和经济方面的考虑都越来越倾向于通过基于软件的状态估计方法来替换机械传感器和传感器。消除编码器或感应电机驱动器上的分辨率是一个很好的例子。对于基于“磁场定向”的高性能感应电动机驱动器,必须确定感应电机(转子,定子,气隙)内部的磁通矢量相对于定子框架的角度。如果在没有磁通传感器且没有转子速度/位置传感器的情况下完成此操作,则电压/电流或v / i模型是确定此磁通角的方法。 v / i模型存在漂移问题,尤其是在低通量频率下。通过分析磁场坐标而不是固定定子坐标中的v / i模型,漂移问题成为稳定性问题。内部反馈方法仍然会留下这样的无传感器控制性能很差的操作区域:零磁通频率附近的区域[1]。在此频率范围内,即使在零磁通频率下,高频励磁电流注入方法也可提供一种确定磁通角的方法。该方法基于感应电机内部的饱和效应,其结构是该建议的基础。在此工作之前,现有的通过注入高频估计技术的电机控制方法取决于设计[1,2--7]。此外,这些现有的以及新出现的基于观察者的估计技术的局限性还没有得到很好的理解,也没有得到很好的应用。这项工作首先着重于在不修改转子设计的情况下,根据标准感应电机的定子电压和电流评估和改进转子磁通估算。在这项工作中,考虑了感应电机饱和模型的最新发展及其在获得感应电机转子磁通量的圆锥位置中的用途。特别是,定子电流矢量的运动通过从电动机磁饱和度获得的变比转换为转子电流矢量的运动,并且从电动机电压方程式中提取出转子电流矢量信息的运动[3]。该方法基于出现在磁饱和区域中的效应。传递特性是从考虑饱和的电流馈入(电流调节)感应电机的方程得出的。仿真结果表明,结合饱和效应的算法具有良好的效果,能够实现无传感器感应电动机的零速控制。

著录项

  • 作者

    Khan, Fida Muhammad.;

  • 作者单位

    Michigan State University.;

  • 授予单位 Michigan State University.;
  • 学科 Engineering Electronics and Electrical.;Physics Electricity and Magnetism.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 129 p.
  • 总页数 129
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:48:04

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