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首页> 外文期刊>IEEE Transactions on Vehicular Technology >Robust Model Predictive Current Control Based on Inductance and Flux Linkage Extraction Algorithm
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Robust Model Predictive Current Control Based on Inductance and Flux Linkage Extraction Algorithm

机译:基于电感和磁通连杆提取算法的鲁棒模型预测电流控制

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Two-vector model predictive current control (MPCC), which applies two vectors in a control cycle, has better steady state performance than conventional MPCC. However, two-vector MPCC needs to select two optimal vectors, calculate two current slopes and two vector working times, which have to use the inductance and the flux linkage parameter in the permanent magnet synchronous motor (PMSM) drives. Therefore, the control performance of two-vector MPCC is more influenced by the model parameter accuracy. Aiming at reducing parameter sensitivity of the two-vector MPCC method, a robust two-vector MPCC method is proposed, which can obtain accurate inductance and flux linkage information in real time based on the presented inductance extraction algorithm and the flux linkage extraction algorithm. Moreover, the proportional-integral regulator parameters of the extraction algorithms are theoretically deduced. The experiment results of the proposed method indicate that the satisfactory control performance can be achieved under the condition of the parameter mismatches.
机译:两个向量模型预测电流控制(MPCC),在控制周期中应用两个向量,具有比传统MPCC更好的稳态性能。然而,两向量MPCC需要选择两个最佳矢量,计算两个电流斜率和两个矢量工作时间,该工作时间必须使用永磁同步电动机(PMSM)驱动器中的电感和磁通连杆参数。因此,通过模型参数精度对两个矢量MPCC的控制性能更受影响。旨在降低两向量MPCC方法的参数灵敏度,提出了一种坚固的两向量MPCC方法,其可以基于所示的电感提取算法和磁通连杆提取算法实时获得精确的电感和助焊通量。此外,理论上推导出提取算法的比例积分调节器参数。所提出的方法的实验结果表明,在参数不匹配的条件下可以实现令人满意的控制性能。

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