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Identification of three phase induction machines equivalent circuits parameters using multi-objective genetic algorithms

机译:基于多目标遗传算法的三相感应电机等效电路参数辨识

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The use of multiobjective optimization technique in determining the values of the steady-state equivalent circuit parameters of a three-phase squirrel-cage induction machine is discussed. The identification procedure is based on the steady state phase current versus slip and torque versus slip characteristics. Nonlinearities in the Induction machine such as saturation effects and skin effects are also taken into account. The proposed technique is based on Multiobjective Genetic Algorithms (MOGA). The MOGA is used to minimize the error between the actual data and the data obtained by equivalent circuit. The robustness of the method is shown by identifying parameters of the induction motor in three different cases. The simulation results show that the method successfully estimates the motor parameters.
机译:讨论了使用多目标优化技术确定三相鼠笼式感应电机的稳态等效电路参数的值。识别过程基于稳态相电流对滑差和转矩对滑差特性。还应考虑感应电机中的非线性,例如饱和效应和集肤效应。所提出的技术基于多目标遗传算法(MOGA)。 MOGA用于最小化实际数据和等效电路获得的数据之间的误差。该方法的鲁棒性通过在三种不同情况下识别感应电动机的参数来显示。仿真结果表明,该方法成功地估计了电机参数。

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