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Improved control of DFIG-based wind turbines for frequency response and power oscillation damping

机译:改进的基于DFIG的风力发电机的频率响应和功率振荡阻尼控制

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This paper investigates an improved inertia control strategy of variable speed wind turbines, which provides with a novel approach to dynamic characteristics enhancement during frequency and oscillation events. Based on the analysis of the impacts of frequency control on inter-area power oscillation, an improved frequency control scheme of wind turbines is proposed. In this scheme, a first-order lag differential control loop is added in traditional PD controller, so that the frequency regulation and power oscillation damping functions are combined in one unified controller to enhance the interconnected network stability, moreover it is easier for setting the parameters. A typical two-area system containing three synchronous generators and a DFIG based wind turbine with high wind penetration is tested to validate the proposed control strategies. Simulation results show that wind farms can provide rapid frequency response and positive oscillation damping using the proposed control strategy. Therefore, the dynamic stability of the grid with high wind power penetration can be significantly improved.
机译:本文研究了变速风力涡轮机的一种改进的惯性控制策略,该策略提供了一种在频率和振荡事件期间增强动态特性的新颖方法。在分析频率控制对区域间功率振荡的影响的基础上,提出了一种改进的风力发电机频率控制方案。在该方案中,传统的PD控制器中增加了一阶滞后微分控制环,从而将频率调节和功率振荡阻尼功能组合在一个统一的控制器中,以增强互连的网络稳定性,而且更易于设置参数。测试了一个典型的两区域系统,该系统包含三个同步发电机和一个具有高风速穿透力的基于DFIG的风力涡轮机,以验证所提出的控制策略。仿真结果表明,采用所提出的控制策略,风电场可以提供快速的频率响应和正振荡阻尼。因此,可以显着提高具有高风力渗透的电网的动态稳定性。

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