Title :
Assuring transient stability in the smart grid
Author_Institution :
Albeado, Inc., USA
Abstract :
With unprecedented capabilities for monitoring system operating conditions based on synchronized sub-second measurements and providing quasi-continuous control signals throughout the grid, the smart grid offers the potential to increase all voltage, transient and dynamic (small signal) stability limits to a level above the relevant thermal limits. With stability thus assured, the smart grid can ultimately become as flexible as the internet. This paper presents a strategy for assuring transient stability in the smart grid. The proposed closed-loop control scheme creates a stable operating point in locations where the open loop system (i.e., the system without the controller) would be unstable. Simulation results for a simple system are presented to illustrate the capabilities of the scheme. The stable operating region of the system can be expanded until the onset of “managed chaos” where a sequence of ephemeral equilibria can be created until a stable equilibrium is reached.
Keywords :
closed loop systems; power system control; power system transient stability; smart power grids; closed-loop control scheme; ephemeral equilibria; managed chaos; open loop system; smart grid; stable equilibrium; transient stability; Power system stability; Reactive power; Stability criteria; Thermal stability; Transient analysis; Voltage control; coordinated local and wide area control; distributed autonomous intelligence; ephemeral equilibrium; fast local control; flexible smart grid; power system control; power system stability; transient stability;
Conference_Titel :
Innovative Smart Grid Technologies (ISGT), 2012 IEEE PES
Conference_Location :
Washington, DC
Print_ISBN :
978-1-4577-2158-8
DOI :
10.1109/ISGT.2012.6175778