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Application of iterative learning control for ripple torque compensation in PMSM drive

机译:迭代学习控制在PMSM驱动器中的纹波扭矩补偿中的应用

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The aim of the studywas to find an effective method of ripple torque compensation for a direct drive with a permanent magnet synchronous motor (PMSM) without time-consuming drive identification. The main objective of the research on the development of a methodology for the proper teaching a neural network was achieved by the use of iterative learning control (ILC), correct estimation of torque and spline interpolation. The paper presents the structure of the drive system and the method of its tuning in order to reduce the torque ripple, which has a significant effect on the uneven speed of the servo drive. The proposed structure of the PMSM in the dq axis is equipped with a neural compensator. The introduced iterative learning control was based on the estimation of the ripple torque and spline interpolation. The structurewas analyzed and verified by simulation and experimental tests. The elaborated structure of the drive system and method of its tuning can be easily used by applying a microprocessor system available now on the market. The proposed control solution can be made without time-consuming drive identification, which can have a great practical advantage. The article presents a new approach to proper neural network training in cooperation with iterative learning for repetitive motion systems without time-consuming identification of the motor.
机译:该研究的目的是找到具有永磁同步电动机(PMSM)的直接驱动的纹波扭矩补偿的有效方法,而不耗时的驱动识别。通过使用迭代学习控制(ILC),正确估计扭矩和花键内插实现了对神经网络的适当教学方法的发展的主要目标。本文介绍了驱动系统的结构和其调谐的方法,以减少扭矩纹波,这对伺服​​驱动器的不均匀速度具有显着影响。在 DQ轴上的PMSM的所提出的结构配备了神经补偿器。引入的迭代学习控制基于纹波扭矩和样条插值的估计。通过模拟和实验测试分析和验证了结构。通过在市场上应用微处理器系统,可以容易地使用驱动系统和其调整方法的制定结构。所提出的控制解决方案可以在没有耗时的驱动识别的情况下进行,这可以具有很大的实际优势。本文在没有耗时的识别电动机的情况下,提出了一种与迭代学习的适当神经网络培训的新方法,而不耗时。

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