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Increasing wind farm transient stability by dynamic reactive compensation: Synchronous-machine-based ESS versus SVC

机译:通过动态无功补偿提高风电场暂态稳定性:基于同步机的ESS与SVC

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Using bulk energy storage systems such as pumped-hydro electric storage (PHES) and compressed-air energy storage (CAES) with wind power plants offers advantages. They are well-proven technologies and more economical compared to batteries. Being synchronous machines, apart from the ability to regulate wind farm real power output, they can also be used to provide reactive power to support wind farms, even when their energy storage unit is fully discharged. This paper investigates the use of these ESS to increase wind farms transient stability by dynamic reactive compensation. Experiments with 60-MW wind farm and two types of popular wind turbines, namely stall-controlled and DFIG, show that the ESS performance is better than that of SVC. The ESS are particularly effective for use with stall-controlled wind turbines. They increase the wind farm critical clearing time and shorten the postfault voltage recovery duration considerably. The results suggest an operation technique for raising the ESS efficiency and value.
机译:在风力发电厂中使用大容量储能系统,例如抽水蓄能(PHES)和压缩空气储能(CAES)提供了优势。与电池相比,它们是成熟的技术,并且更经济。作为同步电机,除了能够调节风电场的有功功率输出外,它们甚至还可以用于提供无功功率以支持风电场,即使其储能单元已完全放电。本文研究了使用这些ESS通过动态无功补偿来提高风电场的暂态稳定性。在60兆瓦的风电场和两种流行的风力涡轮机(失速控制和DFIG)上进行的实验表明,ESS性能优于SVC。 ESS特别适用于失速控制的风力涡轮机。它们增加了风电场的临界清理时间,并大大缩短了故障后电压恢复的时间。结果提示了一种提高ESS效率和价值的操作技术。

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