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构网型光储宽频振荡抑制与并网稳定技术及其在弱电网场景的应用

Broadband Oscillation Suppression and Grid Stabilization Technology for Grid Structured Optical Storage and Its Application in Weak Current Network Scenarios

  • 摘要: 针对弱电网场景下构网型光储系统并网稳定性不足与宽频振荡频发的问题,本文提出多维度协同抑制技术。首先,基于阻抗耦合机理分析,提出虚拟阻抗重塑算法,通过实时频域扫描动态补偿电网感性阻抗;其次,设计虚拟同步机多时间尺度控制架构,模拟同步机惯量特性以增强暂态支撑能力;同时,开发宽频振荡在线监测系统,结合改进Prony算法实现2 ms级模态辨识与自适应抑制。 工程应用表明:在SCR = 1.2~1.5的弱电网中,系统等效阻尼比提升260%,年均振荡事件减少72.9%;故障穿越成功率由67%提升至96%,并网点电压波动率稳定于4.3%。技术推广后,新能源场站非计划停运损失减少2.3亿元/年,电网频率合格率提升至99.98%。本研究成果为高比例新能源接入的弱电网稳定性提升提供了可复制的技术路径。

     

    Abstract: In response to the problems of insufficient grid stability and frequent broadband oscillations in the construction of grid-forming optical storage systems in weak-grid scenarios, this paper proposes a multidimensional cooperative suppression technology. First, based on the analysis of the impedance-coupling mechanism, a virtual impedance reshaping algorithm is proposed to dynamically compensate for the grid's inductive impedance through real-time frequency-domain scanning. Second, a virtual synchronous generator (VSG) multi-timescale control architecture is designed to simulate the inertia characteristics of synchronous generators and enhance transient support capability. Meanwhile, a broadband oscillation online monitoring system is developed, combined with an improved Prony algorithm to achieve 2ms-level modal identification and adaptive suppression. Engineering applications show that in weak grids with SCR=1.2–1.5, the system's equivalent damping ratio increases by 260%, and the average annual oscillation events are reduced by 72.9%. The fault ride-through success rate improves from 67% to 96%, and the voltage fluctuation rate at the grid-connection point remains stable at 4.3%. After the application of this technology, the unplanned downtime losses of renewable energy stations decrease by ¥230 million per year, and the grid frequency compliance rate increases to 99.98%. The research results provide a replicable technical solution for improving the stability of weak grids with high-penetration renewable energy integration.

     

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