DocumentCode :
1451851
Title :
Microgrid Stability Characterization Subsequent to Fault-Triggered Islanding Incidents
Author :
Alaboudy, A. H Kasem ; Zeineldin, H.H. ; Kirtley, James L., Jr.
Author_Institution :
Electr. Ind. Dept., Suez Canal Univ., Suez, Egypt
Volume :
27
Issue :
2
fYear :
2012
fDate :
4/1/2012 12:00:00 AM
Firstpage :
658
Lastpage :
669
Abstract :
With the growing deployment of microgrids, it has become urgent to investigate the microgrid behavior during transient faults and subsequent islanding conditions. The load type and the manner in which distributed generations (DGs) are controlled can have substantial impacts on the dynamic performance of microgrids. In this paper, impacts of different control schemes of the inverter-based DG and microgrid load types on the microgrid stability subsequent to fault-forced islanding are investigated. A microgrid model, simulated on Matlab/Simulink software, is analyzed including a mix of synchronous and inverter-based DG and a combination of passive RLC and induction motor (IM) loads. Simulation results show that in the presence of IM loads, the microgrid may lose its stable operation even if the fault is isolated within a typical clearing time. The critical clearing time of a microgrid is highly dependent on the microgrid control strategy, DG interface control, and load type. Induction motor loads can prove problematical to microgrid transient stability, particularly in situations in which the voltage dip can cause the induction motor to “pull out”.
Keywords :
distributed power generation; induction motors; invertors; power distribution control; power distribution faults; power system stability; DG interface control; IM load; Matlab-Simulink software; distributed generation; fault isolation; fault-forced islanding; fault-triggered islanding incident; induction motor load; inverter-based DG; microgrid control strategy; microgrid critical clearing time; microgrid transient fault; microgrid transient stability characterization; passive RLC; voltage dip; Frequency control; Inverters; Power system stability; Reactive power; Stability analysis; Voltage control; Voltage fluctuations; Distribution systems; grid faults; induction motor (IM) loads; inverter control schemes; microgrid stability;
fLanguage :
English
Journal_Title :
Power Delivery, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8977
Type :
jour
DOI :
10.1109/TPWRD.2012.2183150
Filename :
6155067
Link To Document :
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