Title :
Robust design and coordination of multiple damping controllers using nonlinear constrained optimization
Author :
Kamwa, Innocent ; Trudel, Gilles ; Gérin-Lajoie, Luc
Author_Institution :
TransEnergie, Montreal, Que., Canada
fDate :
8/1/2000 12:00:00 AM
Abstract :
This paper proposes a design approach for power system stabilizing controllers based on parameter optimization of compensators with generalized structures. It shows that a selective modal performance index is an improved measure of the stabilizing effect of a given design, although its blind minimization can end in a useless local minimum. Adding stability, sensitivity and robustness constraints greatly improve the engineering significance of the resulting design. The development is fully multivariable and remains sufficiently general to apply equally well to a feedback or cascade stabilizer, with any type of input signal or transfer function structure. Three examples are used: a robust PSS design for a single machine-infinite bus system with multiple operating points; multiple PSS coordination for a large system; and a coordinated design of four PSSs for the Kundur´s two-area test system. All results show good prospects for the constrained optimization based approach to the design of robust stabilizers
Keywords :
control system synthesis; damping; optimisation; power system stability; robust control; Kundur´s two-area test system; cascade stabilizer; compensators; coordinated design; feedback stabilizer; multiple PSS coordination; multiple damping controllers; multiple operating points; nonlinear constrained optimization; parameter optimization; power system stabilizing controllers; robust PSS design; robust coordination; robust design; robustness constraints; selective modal performance index; sensitivity; single machine-infinite bus system; small signal stability; Control systems; Damping; Design optimization; Performance analysis; Power system control; Power system measurements; Power system stability; Robust control; Robust stability; Robustness;
Journal_Title :
Power Systems, IEEE Transactions on