DocumentCode :
1343739
Title :
Robust flight control design with handling qualities constraints using scheduled linear dynamic inversion and loop-shaping
Author :
Siwakosit, Wichai ; Snell, S.A. ; Hess, Ronald A.
Author_Institution :
Dept. of Mech. & Aeronaut. Eng., California Univ., Davis, CA, USA
Volume :
8
Issue :
3
fYear :
2000
fDate :
5/1/2000 12:00:00 AM
Firstpage :
483
Lastpage :
494
Abstract :
A technique for obtaining a full-envelope decoupled linear flight control design is presented. The methodology begins with a reduced-order linear dynamic-inversion technique that is scheduled over the flight envelope. The reduced order dynamic inverter can offer a significant reduction in the number of state variables to be sensed or estimated as compared to typical applications of inverse dynamic control. The technique can provide desired input-output characteristics including control decoupling. The required gain scheduling of the reduced order dynamic inversion is straightforward. Uncertainty is introduced by perturbing the stability derivatives in the vehicle model at each of the flight conditions considered. The effects of uncertainty are then reduced by additional feedback loops involving a diagonal compensation matrix obtained through application of a loop shaping procedure based upon a quantitative feedback theory predesign technique. The tendency of quantitative feedback theory to produce high-bandwidth conservative designs is mitigated by the scheduling and decoupling associated with the dynamic inversion. Finally, handling qualities and pilot-induced oscillation tendencies are evaluated using a structural model of the human pilot implemented in an interactive computer program that can include the effects of nuisance nonlinearities such as actuator saturation. The proposed methodology is applied to the design of a lateral-directional flight control system for a piloted supermaneuvarable fighter aircraft
Keywords :
aircraft control; compensation; control nonlinearities; control system synthesis; feedback; interactive systems; man-machine systems; matrix algebra; robust control; I/O characteristics; actuator saturation; diagonal compensation matrix; dynamic inversion; feedback loops; full-envelope decoupled linear flight control design; gain scheduling; handling qualities; handling qualities constraints; high-bandwidth conservative designs; input-output characteristics; interactive computer program; inverse dynamic control; lateral-directional flight control system design; loop-shaping; nuisance nonlinearities; pilot-induced oscillation tendencies; piloted supermaneuvarable fighter aircraft; quantitative feedback theory predesign technique; reduced-order linear dynamic-inversion technique; robust flight control design; uncertainty; Aerospace control; Dynamic scheduling; Feedback loop; Inverters; Robust control; Stability; State estimation; Uncertainty; Vehicle dynamics; Vehicles;
fLanguage :
English
Journal_Title :
Control Systems Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-6536
Type :
jour
DOI :
10.1109/87.845879
Filename :
845879
Link To Document :
بازگشت