Title :
Optimal Protection Coordination for Microgrids With Grid-Connected and Islanded Capability
Author :
Najy, Waleed K A ; Zeineldin, H.H. ; Woon, Wei Lee
Author_Institution :
Masdar Inst. of Sci. & Technol., Masdar, United Arab Emirates
fDate :
4/1/2013 12:00:00 AM
Abstract :
Microgrids can be operated either grid-connected to reduce system losses and for peak shaving or islanded to increase reliability and provide backup power during utility outage. Such dual configuration capability imposes challenges on the design of the protection system. Fault current magnitudes will vary depending on the microgrid operating mode. In this paper, a microgrid protection scheme that relies on optimally sizing fault current limiters and optimally setting directional overcurrent relays is proposed. The protection scheme is optimally designed taking into account both modes of operation (grid-connected and islanded). The problem has been formulated as a constrained nonlinear programming problem and is solved using the genetic algorithm with the static penalty constraint-handling technique. The proposed approach is tested on two medium-voltage networks: a typical radial distribution system and on the IEEE 30-bus looped power distribution system equipped with directly connected conventional synchronous generators.
Keywords :
distributed power generation; fault currents; nonlinear programming; power distribution protection; synchronous generators; IEEE 30-bus looped power distribution system; constrained nonlinear programming problem; fault current; genetic algorithm; grid-connected capability; islanded capability; medium-voltage networks; microgrids; optimal protection coordination; protection system; radial distribution system; reduce system losses; static penalty constraint-handling technique; synchronous generators; utility outage; Biological cells; Circuit faults; Fault location; Genetic algorithms; Optical character recognition software; Optimization; Relays; Directional overcurrent relay coordination; distributed generation (DG); fault current limiters (FCLs); short-circuit analysis;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2012.2192893