Title :
State estimation and control of electric loads to manage real-time energy imbalance
Author :
Mathieu, J. ; Koch, Stephan ; Callaway, Duncan
Author_Institution :
Power Syst. Lab., ETH Zurich, Zurich, Switzerland
Abstract :
This paper explores methods to coordinate aggregations of thermostatically controlled loads (TCLs; including air conditioners and refrigerators) to manage frequency and energy imbalances in power systems. We focus on opportunities to centrally control loads with high accuracy but low requirements for sensing and communications infrastructure. We compare cases when measured load state information (e.g., power consumption and temperature) is 1) available in real time; 2) available, but not in real time; and 3) not available. We use Markov chain models to describe the temperature state evolution of populations of TCLs, and Kalman filtering for both state and joint parameter/state estimation. A look-ahead proportional controller broadcasts control signals to all TCLs, which always remain in their temperature dead-band. Simulations indicate that it is possible to achieve power tracking RMS errors in the range of 0.26%-9.3% of steady state aggregated power consumption. We also report results in terms of the generator compliance threshold which is commonly used in industry. Results depend upon the information available for system identification, state estimation, and control. Depending upon the performance required, TCLs may not need to provide state information to the central controller in real time or at all.
Keywords :
Kalman filters; Markov processes; least mean squares methods; load flow control; load management; power consumption; power system state estimation; proportional control; thermostats; Kalman filtering; Markov chain model; TCL; central controller; control signal broadcasting; electric load control; electric load state estimation; energy imbalance management; frequency imbalance management; generator compliance threshold; joint parameter-state estimation; power consumption; power system identification; power tracking RMS error; proportional controller; temperature dead band; temperature state evolution; thermostatically controlled load; Laboratories; Power demand; Real-time systems; State estimation; Temperature measurement; Temperature sensors;
Conference_Titel :
Power and Energy Society General Meeting (PES), 2013 IEEE
Conference_Location :
Vancouver, BC
DOI :
10.1109/PESMG.2013.6672144