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Power oscillation damping capabilities of wind power plant with full converter wind turbines considering its distributed and modular characteristics

机译:考虑全分布式风力发电机组的分布式和模块化特性的风力发电厂的功率振荡阻尼能力

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摘要

Wind power plants (WPP) are for power system stability studies often represented with aggregated models where several wind turbines (WT) are aggregated into a single up-scaled model. The advantage is a reduction in the model complexity and the computational time, and for a number of study types the accuracy of the results has been found acceptable. A large WPP is, however, both modular and distributed over a large geographical area, and feasibility of aggregating the WTs, thus, have to be reassessed when new applications are introduced for WPPs. Here, the power oscillation damping capabilities are investigated for a WPP, which includes the full layout of the collector grid and where the WTs are represented individually. With this approach, the influence of the WT control in terms of impact on oscillatory modes is assessed for the WTs individually. The initial results encourage that park level control is possible. Time domain simulations support that each WT contribute to a common WPP response. Park level active and reactive power-based power oscillation damping controllers (POD) are designed and the positive damping contribution is demonstrated. Keeping the POD designs unchanged, the impact of WPP aggregation is investigated and it is shown that the level of WPP aggregation only has limited impact on the resulting modal damping. The study is based on a non-linear, dynamic model of the 3.6 MW Siemens Wind Power WT.
机译:风力发电厂(WPP)用于电力系统稳定性研究,通常以汇总模型表示,其中将多个风力涡轮机(WT)汇总到单个放大模型中。优点是减少了模型的复杂性和计算时间,并且对于许多研究类型,结果的准确性已被接受。但是,大型WPP既是模块化的,又分布在较大的地理区域,因此,在为WPP引入新的应用程序时,必须重新评估汇总WT的可行性。在此,研究了WPP的功率振荡阻尼能力,其中包括收集器网格的完整布局以及其中WT分别表示的位置。利用这种方法,就WT而言,分别评估了WT控制对振荡模式的影响。初步结果表明,可以控制停车位。时域仿真支持每个WT有助于共同的WPP响应。设计了基于停车级有功和无功的功率振荡阻尼控制器(POD),并演示了正阻尼作用。在保持POD设计不变的情况下,研究了WPP聚合的影响,结果表明WPP聚合的水平仅对所得的模态阻尼产生有限的影响。该研究基于3.6 MW西门子风力发电WT的非线性动态模型。

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  • 来源
    《Renewable Power Generation, IET》 |2013年第5期|1-1|共1页
  • 作者单位

    Siemens Wind Power A/S, DK-7330 Brande, Denmark and Center for Electric Power and Energy, Department of Electrical Engineering, Technical University of Denmark, DK-2800 Lyngby, Denmark|c|;

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  • 入库时间 2022-08-17 13:27:58

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