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Sensorless switched reflectance motor drive with torque ripple minimization

机译:无传感器切换反射电机驱动,具有扭矩纹波最小化

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Position sensorless torque ripple minimization techniques are presented to deal with the issues of rotor position sensor requirement and high torque ripple production in a switched reluctance motor (SRM) drive. In the proposed methods, multilayer perceptron (MLP) neural networks have been applied to learn the nonlinear electrical characteristics of an SRM. The nonlinear model of an SRM is used in the simulation which takes into account the magnetisation saturation effect. The model is verified with experimental flux linkage, inductance and torque data taken from a 7.5 kW SRM. Simulation results have shown that torque ripple minimization can be achieved without a rotor position sensor or torque sensor. Experimental work has been undertaken to show the effectiveness of the torque prediction by the neural network.
机译:提供位置无传感器扭矩纹波最小化技术以处理转子位置传感器要求和开关磁阻电机(SRM)驱动器中的高扭矩脉动产生的问题。在所提出的方法中,已经应用了多层erceptron(MLP)神经网络来学习SRM的非线性电气特性。 SRM的非线性模型用于模拟,以考虑磁化饱和效果。使用实验磁通连杆,电感和扭矩数据验证,从7.5kW SRM验证。模拟结果表明,在没有转子位置传感器或扭矩传感器的情况下,可以实现扭矩脉动最小化。已经进行了实验工作以显示神经网络扭矩预测的有效性。

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