Title :
Evaluating the impact of distributed solar powers on coordinated demand side management
Author :
Yi-Heng Tzeng ; Tsung-Hui Chang
Author_Institution :
Dept. of Electron. & Comput. Eng., Nat. Taiwan Univ. of Sci. & Technol., Taipei, Taiwan
Abstract :
Demand side management (DSM) has been one of the enabling technologies for the smart grid systems. This paper considers the coordinated DSM (CoDSM) technique where a load aggregator coordinates the energy consumption of a neighborhood with large numbers of customers, in order to achieve real-time power balance. The deferrable loads (such as the Plug-in (Hybrid) Electric Vehicles (PHEV) and washing machine etc.) are considered. Our main interest lies in integrating the distributed energy sources (RES), specifically the distributed solar photovoltaic (PV) powers, in the CoDSM program and evaluating the impact of RES on the power balance performance. The solar powers are modeled as autoregressive (AR) random processes and can be predicted in a real-time fashion. A rolling-window based realtime CoDSM algorithm is presented, which can exploit both real-time and predicted solar power information in the load scheduling process. Simulation results based on real solar power data are presented to examine the performance of CoDSM with different levels of solar power penetration.
Keywords :
autoregressive processes; demand side management; distributed power generation; energy consumption; random processes; renewable energy sources; smart power grids; solar power stations; CoDSM technique; autoregressive random processes; coordinated DSM technique; coordinated demand side management; deferrable loads; distributed energy sources; distributed solar photovoltaic powers; distributed solar powers; energy consumption; load aggregator; load scheduling process; power balance performance; real-time power balance; rolling-window based realtime CoDSM algorithm; smart grid systems; solar power information; solar power penetration; Load modeling; Optimization; Predictive models; Random processes; Real-time systems; Simulation; Smart grids;
Conference_Titel :
Intelligent Green Building and Smart Grid (IGBSG), 2014 International Conference on
Conference_Location :
Taipei
DOI :
10.1109/IGBSG.2014.6835234