Title :
A Hierarchical Framework for Generation Scheduling of Microgrids
Author :
Xiong Wu ; Xiuli Wang ; Chong Qu
Author_Institution :
Sch. of Electr. Eng., Xi´an Jiaotong Univ., Xi´an, China
Abstract :
The uncertainty and intermittency of renewable energy sources pose a challenge to generation scheduling of microgrids. This paper presents a hierarchical framework to handle the uncertainty and realize an economic generation schedule of microgrids. The lower level combines a battery energy-storage system (BESS) with renewable energy sources, targeting maximal utilization of renewable power and minimal deviation from the schedule, to provide an optimal generation plan in the day-ahead market. The upper level minimizes the total cost of the microgrid by the genetic algorithm (GA) to yield an economic generation plan of dispatchable distributed generators (DGs) based on the lower level. Two stages of such hierarchical scheduling before and in the day gradually reduce the uncertainty, and lead the overall schedule to evolve toward a stable and economic one. The method is tested on a 14-bus microgrid system. The simulation indicates that the wind turbine and photovoltaic are gradually stabilized by BESS Besides, the operation is scheduled economically, and cheap DGs are always arranged in priority.
Keywords :
battery management systems; distributed power generation; genetic algorithms; power generation economics; power generation planning; power generation scheduling; wind turbines; 14-bus microgrid system; BESS; battery energy-storage system; day-ahead market; dispatchable distributed generators; economic generation schedule; generation scheduling; genetic algorithm; hierarchical framework; hierarchical scheduling; microgrids; optimal generation plan; photovoltaic; renewable energy sources; renewable power; wind turbine; Energy storage; Microgrids; Optimization; Photovoltaic systems; Renewable energy sources; Schedules; Framework; distributed generator genetic algorithm; generation schedule; microgrids;
Journal_Title :
Power Delivery, IEEE Transactions on
DOI :
10.1109/TPWRD.2014.2360064