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首页> 外文期刊>Recent advances in electrical & electronic engineering >Voltage Sag Detection in Grid-connected Photovoltaic Power Plant for Low Voltage Ride-through Control
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Voltage Sag Detection in Grid-connected Photovoltaic Power Plant for Low Voltage Ride-through Control

机译:基于电网连接光伏发电厂的电压下垂检测,用于低电压乘车控制

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Background: Due to the high level of photovoltaic power plants (PVPPs) penetration into power grids, disconnections of these plants during faults are no longer possible as it may cause problems concerning stability, quality, and operation of the power system. Therefore, new grid codes have been established with low voltage ride-through (LVRT) capability standard requirements for grid-connected PVPPs that should be met. Therefore, for an efficient LVRT control, the fast and precise sag detection strategy is essential for the system to switch from normal operation to LVRT mode of operation. Methods: For this purpose, this paper presents a two automatic fault detection methods which are RMS-based (d-q) components of grid voltage and positive sequence voltage. These methods were utilized to determine the beginning and end of a voltage sag and to determine the sag depth to regulate the required reactive current that should be injected according to the LVRT standard requirements. The operating method depends on calculating present grid voltage under faults to the nominal voltage that identifies the sags' depth and therefore inject the required amount of reactive power accordingly. Also, a comparison between the two proposed methods regarding response speed and accuracy was made. The effectiveness of these detection strategies is that it can be integrated into the voltage source inverter (VSI) without utilizing additional external hardware or software programming. Results: The simulation results demonstrated a good precision and how straightforward the proposed methods' usage is, proving that the RMS method is faster and more accurate than positive sequence method. Conclusion: In conclusion, it was found that RMS detection algorithm is preferred for a more accurate and efficient LVRT control.
机译:背景技术:由于高水平的光伏发电厂(PVPPS)渗透到电力网格中,因此在故障期间断开这些设备的断开不再可能导致电力系统的稳定性,质量和操作问题。因此,已经建立了新的网格代码,以低电压乘车(LVRT)能力标准要求,用于应满足的网格连接的PVPP。因此,为了有效的LVRT控制,快速和精确的下垂检测策略对于从正常操作切换到LVRT操作模式的系统是必不可少的。方法:为此,本文介绍了一种两种自动故障检测方法,其是基于RMS的电网电压和正序电压的基于RMS(D-Q)组件。这些方法用于确定电压凹陷的开始和结束,并确定根据LVRT标准要求调节应注入所需的无功电流的下垂深度。操作方法取决于在故障下计算出现的网格电压,该网格电压识别落下深度的标称电压,因此相应地注入所需的无功功率。而且,制造了关于响应速度和准确性的两个提出方法之间的比较。这些检测策略的有效性是它可以集成到电压源逆变器(VSI)中而不利用额外的外部硬件或软件编程。结果:仿真结果表明了良好的精度以及所提出的方法的使用程度,证明了RMS方法比正序法更快更准确。结论:总之,发现RMS检测算法是更准确和高效的LVRT控制。

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