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A New Predictive Direct Torque Control Method for Improving Both Steady-State and Transient-State Operations of the PMSM

机译:改进永磁同步电动机稳态和瞬态运行的新型预测直接转矩控制方法

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摘要

In this paper, a new predictive direct torque control (DTC) method is proposed, improving the dynamic response of the classical DTC and reducing the torque- and flux-ripples through a voltage vector with an optimal phase. In the transient state, the voltage vector phase is selected in a manner where the fastest dynamic response is achieved, while in the steady state, this phase is selected in a manner where the stator flux amplitude reaches its commanding value at the end of the control cycle. In the steady state, the selected vector is applied to the motor with an optimal time duration calculated to achieve the minimum torque ripple. The five-segment space-vector modulation is used to synthesize the voltage vector, where a fixed switching frequency is obtained. To investigate the effectiveness of the proposed method, steady-state and transient-state performances are tested in the MATLAB software and in practice. Both the simulation and experimental results confirm that the proposed method reduces the torque and flux ripples effectively while improving the dynamic response of the classical DTC method. The comparative investigation of the proposed method with the recent DTC methods indicates that the proposed method has lower ripples in the steady state and a faster dynamic response in the transient state.
机译:本文提出了一种新的预测直接转矩控制(DTC)方法,该方法可改善经典DTC的动态响应,并通过具有最佳相位的电压矢量来减少转矩和磁通脉动。在过渡状态下,以实现最快动态响应的方式选择电压矢量相位,而在稳定状态下,以控制结束时定子磁通幅度达到其指令值的方式选择该相位周期。在稳定状态下,选定的矢量以计算出的最佳持续时间应用于电机,以实现最小转矩波动。五段空间矢量调制用于合成电压矢量,从而获得固定的开关频率。为了研究该方法的有效性,在MATLAB软件中和在实践中测试了稳态和瞬态性能。仿真和实验结果均表明,该方法有效地减小了转矩和磁通波动,同时改善了经典DTC方法的动态响应。与最近的DTC方法进行的比较研究表明,所提出的方法在稳态时具有较低的波动,在瞬态中具有更快的动态响应。

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