Title :
Delay-independent stability for interconnected nonlinear systems with finite L2 gain
Author :
Chopra, Nikhil ; Spong, Mark W.
Author_Institution :
Univ. of Maryland, College Park
Abstract :
In this paper delay-independent stability of a feedback interconnection of nonlinear systems with finite L2- gain is studied. We show that the classical small-gain condition allows stability of the feedback connection independent of the constant delay. In the case of time-varying delays, a modified small-gain condition dependent on the maximum rate of change of the delay is proposed to ensure delay-independent stability. The results are immediately applicable to output-strictly passive systems. If the nonlinear systems are passive, scattering theory can be used to provide delay-independent stability when the delays are constant. To handle time-varying delays, a modified scattering transformation approach is developed to ensure delay-independent stability of the closed loop system. A numerical example is also presented to verify the efficacy of the proposed algorithms.
Keywords :
closed loop systems; delays; feedback; interconnected systems; nonlinear control systems; stability; time-varying systems; closed loop system; delay-independent stability; feedback interconnection; interconnected nonlinear systems; passive systems; scattering theory; small-gain condition; time-varying delays; Closed loop systems; Control systems; Delay effects; Feedback; Nonlinear control systems; Nonlinear systems; Scattering; Stability; Time varying systems; USA Councils;
Conference_Titel :
Decision and Control, 2007 46th IEEE Conference on
Conference_Location :
New Orleans, LA
Print_ISBN :
978-1-4244-1497-0
Electronic_ISBN :
0191-2216
DOI :
10.1109/CDC.2007.4434672