Title :
Hybrid Variable-Structure Control With Evolutionary Optimum-Tuning Algorithm for Fast Grid-Voltage Regulation Using Inverter-Based Distributed Generation
Author :
Mohamed, Yasser Abdel-Rady Ibrahim ; El Saadany, Ehab F.
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Waterloo, Waterloo, ON
fDate :
5/1/2008 12:00:00 AM
Abstract :
Fast grid-voltage regulation is a necessary requirement in a power distribution system, particularly in feeders serving voltage-sensitive loads. Severe and random voltage disturbances might be initiated by time-varying loads, nondispatchable generation, voltage transients associated with parallel connected loads, and voltage transients caused by capacitor switching. These voltage disturbances are stochastic in nature, with durations vary from a fraction of a cycle to few cycles. To ensure perfect regulation of the voltage at the point of common coupling (PCC) and provide means for rejecting voltage disturbances, the voltage control loop should offer a high disturbance rejection performance. This paper presents a newly designed grid-voltage control scheme, for the distributed generation interface, based on a hybrid linear with variable-structure control voltage controller. The proposed voltage controller can embed a wide band of frequency modes through an equivalent internal model. Subsequently, wide range of voltage perturbations, including capacitor-switching voltage disturbances, can be rejected. To optimally tune the proposed nonlinear voltage controller, the tuning problem is formulated as a constrained optimization problem, and solved via an evolutionary search algorithm based on the particle-swarm-optimization (PSO) technique. Therefore, a simple and structured tuning methodology can be obtained. To provide accurate and robust tracking of the generated reference current trajectory, a newly designed robust deadbeat current control algorithm is adopted. Theoretical analysis and comparative evaluation tests are presented to demonstrate the effectiveness of the proposed control scheme.
Keywords :
control system synthesis; distributed power generation; electric current control; evolutionary computation; invertors; nonlinear control systems; particle swarm optimisation; power distribution control; search problems; variable structure systems; voltage control; capacitor switching; evolutionary optimum-tuning algorithm; evolutionary search algorithm; grid-voltage control scheme; grid-voltage regulation; hybrid variable-structure control; inverter-based distributed generation; nondispatchable generation; nonlinear voltage controller; parallel connected loads; particle-swarm-optimization technique; point of common coupling; power distribution system; random voltage disturbances; robust deadbeat current control algorithm; variable-structure control voltage controller; voltage control loop; voltage transients; voltage-sensitive loads; Distributed generation (DG); fast load-voltage regulation; grid-connected inverters; particle-swarm optimization (PSO); variable-structure control;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2008.921106