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Impedance-Based Stability Criterion for Grid-Connected Inverters

IEEE Transactions on Power Electronics · 2011 · Vol. 26(11) · pp. 3075–3078
Jian Sun

Abstract

Grid-connected inverters are known to become unstable when the grid impedance is high. Existing approaches to analyzing such instability are based on inverter control models that account for the grid impedance and the coupling with other grid-connected inverters. A new method to determine inverter-grid system stability using only the inverter output impedance and the grid impedance is developed in this paper. It will be shown that a grid-connected inverter will remain stable if the ratio between the grid impedance and the inverter output impedance satisfies the Nyquist stability criterion. This new impedance-based stability criterion is a generalization to the existing stability criterion for voltage-source systems, and can be applied to all current-source systems. A single-phase solar inverter is studied to demonstrate the application of the proposed method.

Microgrid Control and OptimizationIslanding Detection in Power SystemsAdvanced DC-DC ConvertersInverterNyquist stability criterionControl theory (sociology)Electrical impedanceOutput impedanceGridStability criterionComputer scienceVoltage sourceElectronic engineering
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References
Overview of Control and Grid Synchronization for Distributed Power Generation Systems
IEEE Transactions on Industrial Electronics · 2006 · 5,104 citations
Small-Signal Methods for AC Distributed Power Systems–A Review
IEEE Transactions on Power Electronics · 2009 · 695 citations
Input-Admittance Calculation and Shaping for Controlled Voltage-Source Converters
IEEE Transactions on Industrial Electronics · 2007 · 1,097 citations
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