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Intelligent controlled three-phase squirrel-cage induction generator system using hybrid wavelet fuzzy neural network

机译:混合小波模糊神经网络的智能控制三相鼠笼式感应发电机系统

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An intelligent controlled three-phase squirrel-cage induction generator (SCIG) system for grid-connected wind power applications using hybrid wavelet fuzzy neural network (WFNN) is proposed in this study. First, the indirect field-oriented mechanism is implemented for the control of the SCIG system. Then, an AC/DC power converter and a DC/AC power inverter are developed to convert the electric power generated by a three-phase SCIG to power grid. Moreover, the dynamic model of the SCIG system and an ideal computed torque controller are developed for the control of the square of DC-link voltage. Furthermore, an intelligent hybrid WFNN controller and two WFNN controllers, which are computation intensive approaches, are proposed for the AC/DC power converter and the DC/AC power inverter respectively to improve the transient and steady-state responses of the SCIG system at different operating conditions. In the intelligent hybrid WFNN controller, to relax the requirement of the lumped uncertainty in the design of the ideal computed torque controller, a WFNN is designed as an uncertainty observer to adapt the lumped uncertainty online. Finally, the feasibility and effectiveness of the SCIG system for grid-connected wind power applications is verified with experimental results.
机译:提出了一种基于混合小波模糊神经网络(WFNN)的风电并网智能控制三相鼠笼式感应发电机(SCIG)系统。首先,实现了间接的面向字段的机制来控制SCIG系统。然后,开发了AC / DC功率转换器和DC / AC功率逆变器,以将由三相SCIG产生的电力转换为电网。此外,为控制直流母线电压的平方,开发了SCIG系统的动态模型和理想的计算扭矩控制器。此外,针对交流/直流电源转换器和直流/交流电源逆变器,分别提出了一种智能混合型WFNN控制器和两个WFNN控制器,它们是计算密集型方法,以改善SCIG系统在不同情况下的瞬态和稳态响应运行条件。在智能混合WFNN控制器中,为了在理想计算转矩控制器的设计中放宽集总不确定性的要求,将WFNN设计为不确定性观察器,以在线调整集总不确定性。最后,通过实验结果验证了SCIG系统在并网风电应用中的可行性和有效性。

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