DocumentCode :
84937
Title :
Load Frequency Control in Power Systems via Internal Model Control Scheme and Model-Order Reduction
Author :
Saxena, Shanky ; Hote, Yogesh V.
Author_Institution :
Indian Inst. of Technol. Roorkee, Roorkee, India
Volume :
28
Issue :
3
fYear :
2013
fDate :
Aug. 2013
Firstpage :
2749
Lastpage :
2757
Abstract :
The large-scale power systems are liable to performance deterioration due to the presence of sudden small load perturbations, parameter uncertainties, structural variations, etc. Due to this, modern control aspects are extremely important in load frequency control (LFC) design of power systems. In this paper, the LFC problem is illustrated as a typical disturbance rejection as well as large-scale system control problem. For this purpose, simple approach to LFC design for the power systems having parameter uncertainty and load disturbance is proposed. The approach is based on two-degree-of-freedom, internal model control (IMC) scheme, which unifies the concept of model-order reduction like Routh and Padé approximations, and modified IMC filter design, recently developed by Liu and Gao [24]. The beauty of this paper is that in place of taking the full-order system for internal-model of IMC, a lower-order, i.e., second-order reduced system model, has been considered. This scheme achieves improved closed-loop system performance to counteract load disturbances. The proposed approach is simulated in MATLAB environment for a single-area power system consisting of single generating unit with a non-reheated turbine to highlight the efficiency and efficacy in terms of robustness and optimality.
Keywords :
closed loop systems; frequency control; load regulation; power filters; power system control; LFC design; Matlab environment; Pade approximation; Routh approximation; full-order system; improved closed-loop system performance; internal model control scheme; large-scale power systems; large-scale system control problem; load disturbance; load frequency control; load perturbation; lower-order model; model-order reduction; modified IMC filter design; nonreheated turbine; parameter uncertainty; second-order reduced system model; single-area power system; structural variation; two-degree-of-freedom IMC scheme; typical disturbance rejection; Approximation methods; Computational modeling; Frequency control; Load modeling; Mathematical model; Power systems; Robustness; Internal model control (IMC); load frequency control (LFC); model-order reduction; robustness;
fLanguage :
English
Journal_Title :
Power Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-8950
Type :
jour
DOI :
10.1109/TPWRS.2013.2245349
Filename :
6476046
Link To Document :
بازگشت