Title :
Optimal Load Control via Frequency Measurement and Neighborhood Area Communication
Author :
Changhong Zhao ; Topcu, Ufuk ; Low, S.H.
Author_Institution :
Dept. of Electr. Eng., California Inst. of Technol., Pasadena, CA, USA
Abstract :
We propose a decentralized optimal load control scheme that provides contingency reserve in the presence of sudden generation drop. The scheme takes advantage of flexibility of frequency responsive loads and neighborhood area communication to solve an optimal load control problem that balances load and generation while minimizing end-use disutility of participating in load control. Local frequency measurements enable individual loads to estimate the total mismatch between load and generation. Neighborhood area communication helps mitigate effects of inconsistencies in the local estimates due to frequency measurement noise. Case studies show that the proposed scheme can balance load with generation and restore the frequency within seconds of time after a generation drop, even when the loads use a highly simplified power system model in their algorithms. We also investigate tradeoffs between the amount of communication and the performance of the proposed scheme through simulation-based experiments.
Keywords :
decentralised control; frequency measurement; load regulation; optimal control; power system measurement; contingency reserve; decentralized optimal load control scheme; frequency measurement noise; frequency responsive loads; generation drop; local frequency measurements; neighborhood area communication; simplified power system model; Decentralized control; Frequency measurement; Load flow control; Optimization; Distributed control; frequency responsive load; neighborhood area communication; optimization;
Journal_Title :
Power Systems, IEEE Transactions on
DOI :
10.1109/TPWRS.2013.2261096