Title :
Investigations on the impacts of uncertain wind power dispersion on power system stability and enhancement through PSO technique
Author :
Sivakumar, P. ; Grace, S. Shakena ; Azeezur, R.A.
Author_Institution :
Dept. of Electr. & Electron. Eng, J.J.Collge of Engineeing & Technol., Trichy, India
Abstract :
This paper proposes the method for investigating the impacts of the uncertain grid connected wind generation on power system stability and enhancement of stability through particle swarm optimization technique. The proposed method is analytical to the parental Monte Carlo simulation. This method calculated the density function which is probabilistic in nature for computing Eigen values of large-scale power system from the density function of multiple grid connected wind power generation which is also a probabilistic one. In this paper, an example of 10-machine power system with two to three grid connected wind farms is used to demonstrate for applying this method. The stability analysis results which are a probabilistic one is verified and confirmed by the Monte Carlo simulation. It is given away that the uncertain variation of grid-connected wind generation will lead to lose the stability of the system even when it is stable. This brings out that when the level of uncertainty increases, the stability of power system worsens. In addition, this paper focuses onto the instability by relating it to some general stabilizing devices like Automatic Voltage Regulator (AVR) and Power System Stabilizer (PSS). From the study, it can be inferred that these things can reduce the instability for large-scale integration of wind generation. The stability level has been enhanced through various level of optimization using PSO technique.
Keywords :
Monte Carlo methods; eigenvalues and eigenfunctions; particle swarm optimisation; power grids; power system stability; wind power plants; AVR; PSO technique; PSS; automatic voltage regulator; density function; eigenvalues; grid connected wind farms; large-scale power system; multiple grid connected wind power generation; parental Monte Carlo simulation; particle swarm optimization technique; power system stability analysis; stabilizing devices; uncertain grid connected wind generation; uncertain wind power dispersion; Load modeling; Mathematical model; Power system stability; Probabilistic logic; Stability analysis; Wind power generation; Wind speed; Eigen value analysis; Eigen vector; Particle Swarm Optimisation PSO; Particle Swarm Optimization; Power System Stabilizer; Power System stability; Probabilistic load flow; Small signal and transient stability; wind power generation;
Conference_Titel :
Energy Efficient Technologies for Sustainability (ICEETS), 2013 International Conference on
Conference_Location :
Nagercoil
Print_ISBN :
978-1-4673-6149-1
DOI :
10.1109/ICEETS.2013.6533587