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Application of STATCOM-supercapacitor for low-voltage ride-through capability in DFIG-based wind farm

机译:Statcom-超级电容器在基于DFIG的风电场中低压乘车能力的应用

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摘要

Low-voltage problem emerges in cases of symmetrical and asymmetrical fault in power systems. This problem can be solved out by ensuring low-voltage ride-through capability of wind power plants, through a static synchronous compensator (STATCOM). The purpose of this study is to reveal that the system can be recovered well by inserting a STATCOM with energy storage to a bus where a double-fed induction generator (DFIG)-based wind farm has been connected, so the bus voltage is maintained within desired limits during a fault. Moreover, a supercapacitor is used as an energy storage element. Modeling of the DFIG and STATCOM along with the nonlinear supercapacitor was carried out in a MATLAB/Simulink environment. The behaviors of the system under three- and two-phase faults have been compared with and without STATCOM-supercapacitor, by observing the parameters of DFIG output voltage, active power, speed, electrical torque variations, and d-q axis stator current variations. It was found that the system became stable in a short time when the STATCOM-supercapacitor was incorporated into the full-order modeled DFIG.
机译:电力系统对称和不对称故障的情况下出现了低压问题。通过静态同步补偿器(Statcom)通过确保风力发电厂的低压乘车能力,可以解决该问题。本研究的目的是揭示系统可以通过将储能器插入到储屋的总线上通过将储能器插入连接的公共汽车已经连接到速率,因此母线电压保持在在故障期间所需的限制。此外,超级电容器用作能量存储元件。 DFIG和Statcom以及非线性超级电容器的建模在Matlab / Simulink环境中执行。通过观察DFIG输出电压,有源功率,速度,电扭矩变化和D-Q轴定子电流变化,将三个和两相故障在三相故障下进行三个和两相故障的行为。有发现,当统计数据库超级电容器被纳入全阶模型DFIG时,该系统在短时间内变得稳定。

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