Title :
Critical slowing-down as indicator of approach to the loss of stability
Author :
Podolsky, Dmitry ; Turitsyn, Konstantin
Author_Institution :
Dept. of Mech. Eng., Massachusetts Inst. of Technol., Cambridge, MA, USA
Abstract :
We consider stochastic electro-mechanical dynamics of an overdamped power system in the vicinity of the saddle-node bifurcation associated with the loss of global stability such as voltage collapse or phase angle instability. Fluctuations of the system state vector are driven by random variations of loads and intermittent renewable generation. In the vicinity of collapse the power system experiences so-called phenomenon of critical slowing-down characterized by slowing and simultaneous amplification of the system state vector fluctuations. In generic case of a co-dimension 1 bifurcation corresponding to the threshold of instability it is possible to extract a single mode of the system state vector responsible for this phenomenon. We characterize stochastic fluctuations of the system state vector using the formal perturbative expansion over the lowest (real) eigenvalue of the system power flow Jacobian and verify the resulting expressions for correlation functions of the state vector by direct numerical simulations. We conclude that the onset of critical slowing-down is a good marker of approach to the threshold of global instability. It can be straightforwardly detected from the analysis of single-node autostructure and autocorrelation functions of system state variables and thus does not require full observability of the grid.
Keywords :
bifurcation; load flow; power grids; power system dynamic stability; correlation function; critical slowing-down phenomenon; intermittent renewable generation; load random variation; overdamped power system stability loss; perturbative expansion; power flow Jacobian lowest eigenvalue; power grid; saddle-node bifurcation vicinity; state vector stochastic fluctuation; stochastic electromechanical dynamics; Correlation; Fluctuations; Load flow; Load modeling; Power system stability; Stochastic processes; Vectors;
Conference_Titel :
Smart Grid Communications (SmartGridComm), 2014 IEEE International Conference on
Conference_Location :
Venice
DOI :
10.1109/SmartGridComm.2014.7007616