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Artificial intelligent based approaches of estimating of torque for multi-teeth per pole switched reluctance motor

机译:基于人工智能的基于磁力电机多齿扭矩的方法

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This paper presents the derivation of artificial intelligence based models for estimation of torque of 24:22 configuration multi-teeth per pole switched reluctance motor. These developed fuzzy logic and neuro-fuzzy torque models are derived from suitable measured data sets of torque which are then tested in MATLAB environment. Error analysis is also performed to determine the average percentage error of each type of artificial intelligent model. The analysis revealed that the accuracy and precision of the simulation results demonstrates that the fuzzy and neuro-fuzzy approaches are suitable for use in accurate predicting of torque of 24:22 configuration switched reluctance motor.
机译:本文介绍了基于人工智能的模型,用于估计24:22配置每极切换磁阻电动机的24:22配置多齿。这些发达的模糊逻辑和神经模糊扭矩模型来自于在Matlab环境中测试的合适测量数据组扭矩。还执行错误分析以确定每种类型的人工智能模型的平均百分比误差。该分析显示,仿真结果的准确性和精度表明,模糊和神经模糊方法适用于准确预测24:22配置开关磁阻电动机的扭矩。

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