Title :
The Fokker-Planck equation for power system stability probability density function evolution
Author :
Keyou Wang ; Crow, M. L.
Author_Institution :
Electr. Eng., Shanghai Jiaotong Univ., Shanghai, China
Abstract :
Summary form only given. This paper presents an analysis of the evolution of the probability density function of the dynamic trajectories of a single machine infinite bus power system. The probability density function can be used to determine the impact of random (stochastic) load perturbations on system stability. The evolution of the state probability density function over time leads to several interesting observations regarding stability regions as a function of damping parameter. The Fokker-Planck equation (FPE) is used to describe the evolution of the probability density of the states. The FPE is solved numerically using PDE solvers (such as finite difference method). Based on the results, the qualitative changes of the stationary density produce peak-like, ridge-like and other complicated shapes. Lastly, the numerical FPE solution combined with SMIB equivalent techniques lay the framework extended to the multimachine system.
Keywords :
numerical analysis; power system stability; probability; Fokker-Planck equation; PDE solvers; SMIB equivalent technique; damping parameter function; dynamic trajectories; finite difference method; multimachine system; numerical FPE solution; peak-like shape; power system stability probability density function evolution; random load perturbations; ridge-like shape; single-machine infinite bus power system; state probability density function; stationary density; Educational institutions; Equations; Numerical stability; Power system dynamics; Power system stability; Probability density function; Stability analysis;
Conference_Titel :
PES General Meeting | Conference & Exposition, 2014 IEEE
Conference_Location :
National Harbor, MD
DOI :
10.1109/PESGM.2014.6939305