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Intelligent Maximum Power Factor Searching Control Using Recurrent Chebyshev Fuzzy Neural Network Current Angle Controller for SynRM Drive System

机译:智能最大功率因数搜索控制使用复制Chebyshev模糊神经网络电流角度控制器SynrM驱动系统

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摘要

To develop a high-performance synchronous reluctance motor (SynRM) drive system, a novel maximum power factor control (MPFC) using a current angle controller with stator resistance and stator flux estimators is proposed. First, a traditional maximum power factor control system using a saliency ratio of the SynRM to generate a fixed current angle command is described. Since the saliency ratio requires offline prepreparation and cannot be adjusted automatically, it is difficult to improve the performance of the MPFC in different operating regions because of the increasing of manufacturing cost and time-consumption. Therefore, an intelligent-maximum power factor searching control (MPFSC) using a recurrent Chebyshev fuzzy neural network (RCFNN) current angle controller is developed for the speed control of a SynRM. In order to search the online optimal power factor (PF) points of the SynRM under different operating conditions, the RCFNN current angle controller is designed to produce the compensated current angle command. Moreover, a proportional-integral speed controller is adopted to generate the stator current magnitude command, and the proposed intelligent-MPFSC is employed to generate the current angle command. Furthermore, the proposed intelligent-MPFSC system is implemented in a 32-bit floating-point TMS320F28075 digital signal processor. Finally, from the experimental results, the current angle commands of the optimal PF can be effectively obtained online at different speed operating commands with varied load torque.
机译:为了开发高性能同步磁阻电机(SYNRM)驱动系统,提出了使用具有定子电阻和定子通量估计器的电流角度控制器的新型最大功率因数控制(MPFC)。首先,描述了使用SYNRM的显着比以产生固定电流角度命令的传统最大功率因数控制系统。由于显着性比率需要离线预制备并且无法自动调节,因此由于制造成本和时间消耗的增加,难以改善不同操作区域的MPFC的性能。因此,开发了使用经常性Chebyshev模糊神经网络(RCFNN)电流角度控制器的智能最大功率因数搜索控制(MPFSC),用于SYNRM的速度控制。为了在不同的操作条件下搜索Synrm的在线最佳功率因数(PF)点,rcfnn电流角度控制器被设计为产生补偿电流角度命令。此外,采用比例积分速度控制器来生成定子电流幅度命令,并且采用所提出的智能MPFSC来产生电流角度命令。此外,所提出的智能MPFSC系统在32位浮点TMS320F28075数字信号处理器中实现。最后,从实验结果中,可以在具有变化的负载扭矩的不同速度操作命令的不同速度操作命令在线在线获得最佳PF的电流角命令。

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