首页> 外文期刊>IEEE Transactions on Energy Conversion >Active Voltage Control for DFIG-Based Wind Farm Integrated Power System by Coordinating Active and Reactive Powers Under Wind Speed Variations
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Active Voltage Control for DFIG-Based Wind Farm Integrated Power System by Coordinating Active and Reactive Powers Under Wind Speed Variations

机译:通过在风速变化下协调有功和无功功率,对基于DFIG的风电场集成电力系统进行有源电压控制

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摘要

Large-scale wind farms are generally integrated by long-distance transmissions, but power grids cannot sufficiently support the access point voltage of these wind farms. The access point voltage undergoes a stability problem under wind speed variations. However, the reactive power compensation device cannot reconcile the requirements of response speed and compensation capacity. Despite their fast power decoupling control, the reactive power capability of doubly fed induction generators is restricted by active power output. To satisfy the reactive power demand of system under wind speed variations, coordinating the reactive power capability and active power output of wind farm is the key solution, based on which a novel active control idea is proposed. The reactive power capability of wind farm and the reactive power demand of system are both studied, and the controllable conditions of access point voltage are analyzed. Active voltage control strategies, including active adjustment of reactive power reference, active speed control, and active pitch angle intervention according to wind speed ranges, are proposed. In the simulation, the method is verified to adequately consider the reactive power demand, and excavate the wind farm reactive power capability. The method also effectively suppresses the change of grid voltage under wind speed variations.
机译:大型风电场通常通过长距离传输进行集成,但是电网无法充分支持这些风电场的接入点电压。接入点电压在风速变化下会遇到稳定性问题。但是,无功补偿装置不能满足响应速度和补偿能力的要求。尽管它们具有快速的功率去耦控制,但是双馈感应发电机的无功功率能力仍然受到有功功率输出的限制。为了满足风速变化时系统的无功需求,协调风电场的无功能力和有功功率输出是关键解决方案,提出了一种新颖的有功控制思想。研究了风电场的无功能力和系统的无功需求,并分析了接入点电压的可控条件。提出了主动电压控制策略,包括根据风速范围主动调节无功功率基准,主动速度控制和主动俯仰角干预。在仿真中,验证了该方法以充分考虑无功功率需求,并挖掘了风电场的无功功率能力。该方法还有效地抑制了风速变化下的电网电压变化。

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