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The fuzzy neural network control with adaptive algorithm for a PM synchronous motor drive

机译:永磁同步电动机驱动器的自适应神经网络模糊控制

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In this study a fuzzy neural network (FNN) control system with adaptive algorithm is proposed to control permanent magnet synchronous motor (PMSM) drive system. First, the DSP field-oriented mechanism is applied to formulate the dynamic equation of the PMSM servo drive. Then, the adaptive FNN control system is proposed to control the rotor of the PMSM servo drive for the tracking of periodic reference inputs. In the adaptive FNN control system, the FNN controller is used to mimic an optimal control law, and the compensated controller with adaptive algorithm is proposed to compensate the difference between the optimal control law and the FNN controller. Moreover, an on-line parameter training methodology, which is derived using the Lyapunov stability theorem and the backpropagation method, is proposed to increase the learning capability of the FNN. The effectiveness of the proposed control schemes is verified by experimental results.
机译:在这项研究中,提出了一种具有自适应算法的模糊神经网络(FNN)控制系统来控制永磁同步电动机(PMSM)驱动系统。首先,将DSP磁场定向机制应用于PMSM伺服驱动器的动力学方程式。然后,提出了自适应FNN控制系统来控制PMSM伺服驱动器的转子,以跟踪周期性的参考输入。在自适应FNN控制系统中,采用FNN控制器模拟最优控制律,并提出了具有自适应算法的补偿控制器,以补偿最优控制律与FNN控制器之间的差异。此外,提出了一种使用Lyapunov稳定性定理和反向传播方法导出的在线参数训练方法,以提高FNN的学习能力。实验结果验证了所提出控制方案的有效性。

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