Title :
Fault-tolerant controller design with applications in power systems and synthetic biology
Author :
Sojoudi, S. ; Lavaei, J. ; Murray, R.M.
Author_Institution :
Dept. of Control & Dynamical Syst., California Inst. of Technol., Pasadena, CA, USA
fDate :
June 29 2011-July 1 2011
Abstract :
This paper deals with fault-tolerant controller design for linear time-invariant (LTI) systems with multiple actuators. Given some critical subsets of the actuators, it is assumed that every combination of actuators can fail as long as the set of the remaining actuators includes one of these subsets. Motivated by electric power systems and biological systems, the goal is to design a controller so that the closed-loop system satisfies two properties: (i) stability under all permissible sets of faults and (ii) better performance after clearing every subset of the existing faults in the system. It is shown that a state-feedback controller satisfying these properties exists if and only if a linear matrix inequality (LMI) problem is feasible. This LMI condition is then transformed into an optimal-control condition, which has a useful interpretation. The results are also generalized to output-feedback and decentralized control cases. The efficacy of this work is demonstrated by designing fault-tolerant speed governors for a power system. The results developed here can be extended to more general types of faults, where each fault can possibly affect all state-space matrices of the system.
Keywords :
actuators; biocontrol; closed loop systems; control system synthesis; decentralised control; fault tolerance; linear matrix inequalities; linear systems; optimal control; power system control; stability; state feedback; state-space methods; LMI problem; LTI system; actuators; biological system; closed-loop system; decentralized control; electric power system; fault-tolerant controller design; fault-tolerant speed governor design; linear matrix inequality; linear time-invariant system; optimal control; output feedback; power systems; stability; state-feedback controller; state-space matrix; synthetic biology; Actuators; Biological systems; Fault tolerance; Fault tolerant systems; Generators; Power system stability;
Conference_Titel :
American Control Conference (ACC), 2011
Conference_Location :
San Francisco, CA
Print_ISBN :
978-1-4577-0080-4
DOI :
10.1109/ACC.2011.5991381