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Optimal Damping Recovery Scheme for Droop-Controlled Inverter-Based Microgrids

机译:下垂控制逆变器微电网的最佳阻尼恢复方案

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Inverter-based microgrids may experience smallsignal stability issues as the generation, loading or network topology change in real-time. This paper presents an eventtriggered damping recovery scheme to improve the stability of a system with droop-controlled inverters and synchronous machines in the event of poorly damped power flows. The droop coefficients of the controllable inverters are manipulated in real-time based on their node sensitivities so as to obtain the maximum damping effort per unit additional power injected. This prevents the overloading of any one inverter or group of inverters in the system and reduces the power sharing disparity that arises from the damping recovery process. For determining the node sensitivities, a novel damping sensitivity formula is presented as an alternative to conventional sensitivity analysis. This enables the reduction of computation complexity from O(n(3)) to O(n), making the proposed algorithm scalable to large systems. Experimental and simulation case studies are presented to demonstrate the effectiveness of the proposed control scheme in restoring damping, as well as its robustness to communication failure.
机译:基于逆变器的微电网可能会在实时的生成,加载或网络拓扑变化中遇到小号稳定性问题。本文介绍了一个事件阻尼恢复方案,以提高具有下垂控制的逆变器和同步机的系统的稳定性,在阻尼功率差。基于它们的节点灵敏度,可以实时操纵可控逆变器的下垂系数,以便获得每单位额外的功率的最大阻尼工作。这防止了系统中任何一个逆变器或一组逆变器的过载,并降低了从阻尼恢复过程中产生的功率共享视差。为了确定节点敏感性,将新的阻尼灵敏度公式呈现为常规灵敏度分析的替代方案。这使得能够将计算复杂性从O(n(3))降低到O(n),使得所提出的算法可扩展到大型系统。提出了实验和模拟案例研究以证明所提出的控制方案在恢复阻尼方面的有效性,以及其对通信故障的鲁棒性。

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