首页> 外文期刊>Mathematical Problems in Engineering: Theory, Methods and Applications >Coordinated Control Using Backstepping of DFIG-Based Wind Turbine for Frequency Regulation in High Wind Energy Penetrated System
【24h】

Coordinated Control Using Backstepping of DFIG-Based Wind Turbine for Frequency Regulation in High Wind Energy Penetrated System

机译:基于DFIG的风力涡轮机的频率调节在高风能渗透系统中的协调控制

获取原文
           

摘要

The expansion of renewable generation has raised some red flags in terms of power system stability, control, and management. For instance, unlike traditional synchronous energy sources, the doubly-fed induction generator- (DFIG-) based wind turbines (WTs) do not instinctively act against frequency deviations. In fact, the power electronics interfacing the generator, merely controlled to warrant maximum wind power conversion, make its output power and mechanical speed immune to the characteristics of the electric network frequency. Moreover, significant wind power penetration (WPP) promotes the retirement of many traditional generation groups, consequently curtailing the power system corresponding inertia and displacing the primary reserves that are essential to retain the frequency within an acceptable range of variation. This paper explores different control approaches, using backstepping, allowing DFIG-based WTs to engage actively in frequency regulation using a coordinated control of the rotor speed and pitch angle to regulate the system during both partial- and full-load operation modes. The first method momentarily discharges part of the kinetic energy stored in the WT spinning masses, and the second method follows a deloaded operation characteristic, so as to keep a specific power reserve that can be automatically activated at the events of frequency excursions. A study case considering an isolated power system that consists of synchronous generators, DFIG-based wind farm, static load, and a sudden frequency disturbance was performed. The simulation result in a Matlab/Simulink environment highlights the robustness and capability of the coordinated control scheme to furnish, under variant operation conditions, active power aid, consequently lifting the frequency nadir up to a superior level than that obtained with 0% wind power penetration in the system.
机译:在电力系统稳定性,控制和管理方面,可再生生成的扩展已经提高了一些红旗。例如,与传统的同步能源不同,基于双馈感应发电机(DFIG-)的风力涡轮机(WTS)不会本能地反对频率偏差。实际上,电力电子设备接合发电机,仅被控制为保证最大的风力转换,使其输出功率和机械速度免受电网频率的特性。此外,显着的风力渗透(WPP)促进了许多传统一代组的退休,从而削减了电力系统对应的惯性并使初级储备位于可接受的变化范围内保持频率至关重要。本文探讨了使用BackStepping的不同控制方法,使基于DFIG的WTS使用转子速度和俯仰角的协调控制在频率调节中充满频率调节,以在部分和全负载操作模式下调节系统。第一方法暂时排出存储在WT纺丝中的动能的一部分,第二种方法遵循额外的操作特性,以便保持可以在频率偏移事件中自动激活的特定功率储备。考虑一个由同步发电机,基于DFIG的风电场,静载荷和突然频率干扰组成的隔离电力系统的研究案例。 Matlab / Simulink环境中的仿真结果突出了协调控制方案在变型操作条件下提供的协调控制方案的鲁棒性和能力,从而使频率Nadir升高到卓越的水平,而不是用0%风力渗透所获得的水平在系统中。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号