首页> 外文会议>CES/IEEE 5th International Power Electronics and Motion Control Conference (IPEMC 2006) >A New Minimum Torque-ripple and Sensorless Control Scheme of BLDC Motors Based on RBF Networks
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A New Minimum Torque-ripple and Sensorless Control Scheme of BLDC Motors Based on RBF Networks

机译:基于RBF网络的无刷直流电动机最小转矩脉动和无传感器控制方案

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In this paper, a new method based on adaptive Radical Basis Function (RBF) networks is proposed to deal with the issues of rotor position requirement and high torque ripple production in a brushless DC (BLDC) motor. Two RBF networks are trained offline with a selfadjustment growing and pruning (GAP) algorithm, and all the train samples are obtained from experimental results to express the nonlinear characters of the machine more accurately. One of the trained networks is used to realize a nonlinear mapping between external voltages, phase currents and rotor position of the motor, at the same time the other is applied for estimation of phase current references with a desired torque. Actual phase currents are adjusted according to the references; therefore the torque ripples generated by non-ideal current waveforms is minimized for a BLDC motor without position sensors. Simulation results show the efficiency of this proposed method.
机译:提出了一种基于自适应径向基函数网络的新方法,解决了无刷直流(BLDC)电机的转子位置要求和高转矩脉动产生的问题。两个RBF网络使用自调整增长和修剪(GAP)算法进行脱机训练,并且所有的训练样本均从实验结果中获得,以更准确地表达机器的非线性特征。一种训练有素的网络用于实现外部电压,相电流和电动机转子位置之间的非线性映射,同时另一种网络则用于估算具有所需转矩的相电流参考。实际相电流根据参考值进行调整;因此,对于不带位置传感器的BLDC电机,由非理想电流波形产生的转矩脉动会最小化。仿真结果表明了该方法的有效性。

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