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Comparative study of STATCOM and SVC performance on Dynamic Voltage Collapse of an Electric Power System with Wind Generation

机译:STATCOM和SVC对风力发电系统动态电压崩溃性能的比较研究。

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One of the major problems of voltage stability is the reactive power limit of the system. Improving the system's reactive power handling capacity via Flexible AC transmission System (FACTS) devices is a solution for prevention of voltage instability. In this paper it is studied the influence of Static Synchronous Compensators (STATCOM) and Static Var Compensators (SVC) in dynamic Voltage Stability during Low Voltage Ride Through (LVRT), in wind farms. The wind turbines are equipped with pitch control coupled with a Fixed Speed Induction Generator (FSIG). Due to the nature of asynchronous operation, system voltage instability of wind farms based on FSIG is largely caused by the excessive reactive power absorption by FSIG after a fault due to the large rotor slip gained during fault. Wind farm models based on FSIG and equipped with either STATCOM or SVC are developed in EUROSTAG. The Automatic Voltage Regulators (AVR) of the generating units and the turbine speed governors were modeled in detail. Different load models were used and the Under Load Tap Changers (ULTC) were also taken into account. Finally, some conclusions that provide a better understanding of the dynamic voltage stability of a system with FSIG model during LVRT, using various capacities of STATCOM and SVC are pointed out.
机译:电压稳定性的主要问题之一是系统的无功功率限制。通过柔性交流传输系统(FACTS)设备提高系统的无功功率处理能力是防止电压不稳定的一种解决方案。本文研究了风电场中静态同步补偿器(STATCOM)和静态无功补偿器(SVC)对低压穿越(LVRT)期间动态电压稳定性的影响。风力涡轮机配有变桨控制和定速感应发电机(FSIG)。由于异步操作的特性,基于FSIG的风电场的系统电压不稳定性主要是由故障后由于故障期间获得的大转子打滑引起的故障后FSIG过度吸收了无功功率引起的。 EUROSTAG开发了基于FSIG并配备STATCOM或SVC的风电场模型。详细建模了发电机组的自动电压调节器(AVR)和涡轮速度调节器。使用了不同的负载模型,还考虑了欠载分接开关(ULTC)。最后,指出了一些结论,这些结论可以更好地理解使用STATCOM和SVC的各种容量的LVRT期间具有FSIG模型的系统的动态电压稳定性。

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