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Research on speed estimation method of induction motor based on improved fuzzy Kalman filtering

机译:基于改进模糊卡尔曼滤波的感应电动机速度估计方法研究

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摘要

An improved fuzzy Kalman filtering speed estimation scheme was proposed by means of measuring stator side voltage and current value based on vector control state equation of induction motor. The designed fuzzy adaptive controller conducted recursive online correction of measurement noise covariance matrix by monitoring the ratio of theory residuals and actual residuals to make it approach real noise level gradually, allowing the filter to perform optimal estimation to improve estimation accuracy of EKF. Meanwhile, co-simulation scheme based on MATLAB and Ansoft was proposed in order to improve simulation accuracy. Field-circuit coupling problems of induction motor under the action of vector control were solved and the parameter optimization accuracy was improved dramatically. The simulation and experimental results show that this algorithm has a strong ability to inhibit the random measurement noise. It is able to estimate motor speed accurately, and has superior static and dynamic characteristics.
机译:提出了一种改进的模糊卡尔曼滤波速度估计方案,该方法基于感应电动机的矢量控制状态方程,通过测量定子侧电压和电流值来实现。设计的模糊自适应控制器通过监测理论残差与实际残差之比,对测量噪声协方差矩阵进行在线递归校正,使其逐渐接近真实噪声水平,从而使滤波器能够进行最佳估计,从而提高EKF的估计精度。同时,提出了基于MATLAB和Ansoft的联合仿真方案,以提高仿真精度。解决了矢量控制作用下感应电动机的励磁回路耦合问题,极大地提高了参数优化精度。仿真和实验结果表明,该算法具有较强的抑制随机测量噪声的能力。它能够准确估计电动机速度,并具有出色的静态和动态特性。

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