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Analysis and application of two recursive parametric estimation algorithms for an asynchronous machine

机译:异步机器的两种递归参数估计算法的分析与应用

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In this communication, two recursive parametric estimation algorithms are analyzed and applied to an squirrel-cage asynchronous machine located at the research “Unit of Automatic Control” (UCA) at ENIS. The first algorithm which, use the transfer matrix mathematical model, is based on the gradient principle. The second algorithm, which use the state-space mathematical model, is based on the minimization of the estimation error. These algorithms are applied as a key technique to estimate asynchronous machine with unknown, but constant or time-varying parameters. Stator voltage and current are used as measured data. The proposed recursive parametric estimation algorithms are validated on the experimental data of an asynchronous machine under normal operating condition as full load. The results show that these algorithms can estimate effectively the machine parameters with reliability.
机译:在此通信中,分析了两种递归参数估计算法,并将其应用于位于ENIS研究“自动控制单元”(UCA)的鼠笼式异步机上。第一个使用转移矩阵数学模型的算法是基于梯度原理的。使用状态空间数学模型的第二种算法基于估计误差的最小化。这些算法被用作估算具有未知参数,但参数恒定或随时间变化的异步电机的关键技术。定子电压和电流用作测量数据。提出的递归参数估计算法在异步电机的满负荷正常运行条件下的实验数据上得到了验证。结果表明,这些算法可以有效地估计机械参数的可靠性。

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