DocumentCode :
3384909
Title :
Hedging strategies for renewable resource integration and uncertainty management in the smart grid
Author :
Narayanaswamy, Balakrishnan ; Jayram, T.S. ; Voo Nyuk Yoong
Author_Institution :
IBM Res., Bangalore, India
fYear :
2012
fDate :
14-17 Oct. 2012
Firstpage :
1
Lastpage :
8
Abstract :
Increased environmental and economic concerns have set the stage for an increase in the fraction of electricity supplied using renewable sources. Recent advances in wind prediction offer hope that reduction in the uncertainty of wind availability will lead to an increase in its value. Model based methods that predict future wind availability and then optimize local generation have been seen to be successful for both economic dispatch and demand management. In this paper we evaluate model free hedging strategies for renewable resource integration and uncertainty management in the smart grid. We compare the performance of these two classes of algorithms for intelligent generator scheduling using simple wind speed forecasters in both simulations and on real wind traces. We also suggest that algorithms based on online convex optimization can be applied to demand management problems and evaluate hedging algorithms for smart demand response, highlighting the reduction in costs possible when renewable energy is combined with demand response.
Keywords :
demand forecasting; demand side management; optimisation; power generation dispatch; power generation scheduling; renewable energy sources; smart power grids; wind power plants; demand management problems; economic dispatch; hedging strategy; intelligent generator scheduling; local generation; online convex optimization; real wind traces; renewable resource integration; simple wind speed forecasters; smart demand response; smart grid; uncertainty management; uncertainty reduction; wind availability; wind prediction; Availability; Cost function; Electricity; Generators; Microgrids; Wind forecasting; Demand Management; Economic Dispatch; Hedging; Online Convex Optimization;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Innovative Smart Grid Technologies (ISGT Europe), 2012 3rd IEEE PES International Conference and Exhibition on
Conference_Location :
Berlin
ISSN :
2165-4816
Print_ISBN :
978-1-4673-2595-0
Electronic_ISBN :
2165-4816
Type :
conf
DOI :
10.1109/ISGTEurope.2012.6465718
Filename :
6465718
Link To Document :
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