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Transient stability enhancement of wind farms connected to a multi-machine power system by using an adaptive ANN-controlled SMES

机译:通过使用自适应ANN控制的SMES增强连接到多机电力系统的风电场的暂态稳定性

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摘要

This paper presents a novel adaptive artificial neural network (ANN)-controlled superconducting magnetic energy storage (SMES) system to enhance the transient stability of wind farms connected to a multi-machine power system during network disturbances. The control strategy of SMES depends mainly on a sinusoidal pulse width modulation (PWM) voltage source converter (VSC) and an adaptive ANN-controlled DC-DC converter using insulated gate bipolar transistors (IGBTs). The effectiveness of the proposed adaptive ANN-controlled SMES is then compared with that of proportional-integral (PI)-controlled SMES optimized by response surface methodology and genetic algorithm (RSM-GA) considering both of symmetrical and unsymmetrical faults. For realistic responses, real wind speed data and two-mass drive train model of wind turbine generator system is considered in the analyses. The validity of the proposed system is verified by the simulation results which are performed using the laboratory standard dynamic power system simulator PSCAD/EMTDC. Notably, the proposed adaptive ANN-controlled SMES enhances the transient stability of wind farms connected to a multi-machine power system.
机译:本文提出了一种新型的自适应人工神经网络(ANN)控制的超导磁储能(SMES)系统,以增强在网络扰动期间连接到多机电力系统的风电场的暂态稳定性。 SMES的控制策略主要取决于正弦脉冲宽度调制(PWM)电压源转换器(VSC)和使用绝缘栅双极型晶体管(IGBT)的自适应ANN控制的DC-DC转换器。然后将所提出的自适应ANN控制的SMES与通过考虑对称和非对称故障的响应面方法和遗传算法(RSM-GA)优化的比例积分(PI)控制的SMES的有效性进行比较。为了获得现实的响应,分析中考虑了风力发电机系统的实际风速数据和两质量传动系模型。通过使用实验室标准动态电源系统模拟器PSCAD / EMTDC执行的仿真结果验证了所提出系统的有效性。值得注意的是,提出的自适应ANN控制的SMES增强了连接到多机电源系统的风电场的暂态稳定性。

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