利用故障条件下的限流控制改进并网变流器的动态响应

Somayeh Mehri Boroojeni, Ehsan Sharafoddin
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摘要

现代电力系统越来越需要能与电网基础设施无缝集成的变流器驱动发电系统。基于电网的变流器尤其具有优势,因为它们能与传统的同步电机协调运行。然而,现有的大部分研究都集中在正常条件下的并网变流器管理,往往忽视了变流器在故障时的行为及其短路能力。本文通过引入基于功率匹配的电流限制方案来弥补这些不足,该方案可确保 GFM 转换器同步,同时防止电流过大。与传统方法不同的是,本文没有对外部功率环或下垂机制做出假设,并立即限制了电流参考,以防止出现卷风。为了进一步提高故障隔离能力,提出了一种动态虚拟阻尼算法。该技术增强了故障穿越能力,即使在弱电网条件下也能保持电网形成特性。通过在 MATLAB 中进行详细仿真,对动态虚拟阻尼控制器和 GFM 故障模式进行了建模和验证。这些结果表明,改变外部电源而不是内部结构可以提高变流器在故障期间的性能,从而确保电网的稳定性和可靠性。
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Improved Dynamic Response in Grid-Forming Converters with Current Limiting Control during Fault Conditions
Modern power systems increasingly demand converter-driven generation systems that integrate seamlessly with grid infrastructure. Grid-based converters are particularly advantageous, as they operate in harmony with conventional synchronous machines. However, most existing research focuses on managing grid-forming converters (GFM) under normal conditions, often neglecting the converters' behavior during faults and their short-circuit capabilities. This paper addresses these gaps by introducing a power matching-based current limitation scheme, which ensures GFM converter synchronization while preventing over currents. It also highlights the limitations of grid-following techniques, which need to maintain robust grid-forming properties during fault conditions. Unlike conventional methods, no assumptions are made regarding outer power loops or droop mechanisms, and current references are immediately restricted to prevent wind-ups. A dynamic virtual damping algorithm is proposed to improve fault isolation further. This technique enhances fault-ride-through capability and maintains grid-forming properties even in weak grid conditions. The dynamic virtual damping controller and fault mode for GFMs are modeled and validated using detailed simulations in MATLAB. These results demonstrate that altering outer power sources, rather than internal structures, improves converter performance during faults, ensuring grid stability and reliability.
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