DocumentCode :
673193
Title :
Estimating capacity credit of wind energy sources using probabilistic methods
Author :
Atla, Chandra Shekhar Reddy ; Balaraman, K. ; Patil, Abhijit
Author_Institution :
M/s Power R&D Consultants Pvt. Ltd., Bangalore, India
fYear :
2013
fDate :
21-22 Sept. 2013
Firstpage :
1
Lastpage :
6
Abstract :
Power systems with high wind penetration undergo increased variability and uncertainty, this leads to significant research in finding the wind power capacity credit on generation adequacy. The deterministic methods used in the past does not reflect the stochastic or probabilistic nature of system behavior with regard to customer demands, component failures and intermittent nature of renewable energy sources in particular wind energy sources. It is observed that large scale integration of wind energy has an impact on power system planning and operation. The large scale wind integration calls for generation planning which is an important aspect in order to meet the customer demands with optimum mix of generation like thermal, hydro and renewable. In this paper, probabilistic method namely sequential Monte-Carlo simulation has been implemented and is validated with IEEE RTS for generation adequacy analysis. The wind model has been incorporated in Monte-Carlo simulation approach in order to find the impact of the intermittent energy sources on generation planning in terms of wind power capacity credit. In the present paper, one of the high wind penetration states in INDIA has been considered for case studies. The capacity credit of wind power has been estimated with the planned generation for next five years considering the reliability index as per GRIDCODE.
Keywords :
Monte Carlo methods; power generation planning; wind power; GRIDCODE; IEEE RTS; capacity credit estimation; component failures; customer demands; generation adequacy analysis; generation planning; high wind penetration; power system operation; power system planning; probabilistic methods; renewable energy sources intermittent nature; sequential Monte-Carlo simulation; wind energy large scale integration; wind energy sources; Capacity planning; Load modeling; Planning; Power system reliability; Probabilistic logic; Reliability; Wind power generation; LOLP; capacity reserve; generation adequacy; intermittent energy sources; power system reliability; reliability index; sequential Monte-Carlo simulation; wind penetration; wind power capacity credit;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Advanced Computing Technologies (ICACT), 2013 15th International Conference on
Conference_Location :
Rajampet
Print_ISBN :
978-1-4673-2816-6
Type :
conf
DOI :
10.1109/ICACT.2013.6710488
Filename :
6710488
Link To Document :
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