DocumentCode
1267640
Title
High-torque density integrated electro-mechanical flight actuators
Author
Lyshevski, Sergey Edward ; Skormin, Victor A. ; Colgren, Richard D.
Author_Institution
Dept. of Electr. & Comput. Eng., Purdue Univ., Indianapolis, IN, USA
Volume
38
Issue
1
fYear
2002
fDate
1/1/2002 12:00:00 AM
Firstpage
174
Lastpage
182
Abstract
Electro-mechanical flight actuators (EMFAs) are core flight-critical vehicle components. Fly-by-wire or fly-by-light control of EMFAs is performed by flight management systems (flight, mission, propulsion, and integrated controls that manage any combination of specific flight, mission, and propulsion functions). Reported here are novel results in the analysis of EMFAs with permanent-magnet synchronous motors, with particular interest in the application of brushless high-torque density motors which have superior characteristics compared with other state-of-the-art motor technologies. It is shown that due to nonlinearities and bounds, new control algorithms must be developed and implemented to achieve a spectrum of performance and requirements for EMFAs. A number of important issues in control, analysis, model development, integration, and verification are studied. Tracking control algorithms are synthesized, stability studied, and novel analysis results are reported. Advanced computer-aided engineering software tools and emerging simulation-based design environments are used to guarantee high fidelity modeling and analysis within data intensive simulation. Proof-of-concept demonstration testbeds for the design of advanced EMFAs and their components are developed, and EMFA imitator performance thoroughly studied. Verification of the concepts reported are formed and documented. Precise tracking, disturbance attenuation, accuracy, stability, robustness, and excellent acceleration capabilities are reported. A demonstration is performed to substantiate the theoretical analyses to add credence to its applicability as an approach and method that the designer of future EMFAs can use to design a new class of actuators for aircraft flight control surfaces
Keywords
Lyapunov methods; aerospace computing; aircraft control; computer aided engineering; control system CAD; eigenvalues and eigenfunctions; electromagnetic actuators; nonlinear control systems; permanent magnet motors; pole assignment; servomechanisms; synchronous motors; Lyapunov-based approach; PWM module; Park transformation; aircraft flight control surfaces; brushless high-torque density motors; computer-aided engineering software tools; control algorithms; electromechanical flight actuators; electromechanical flight servos; feedback linearization; flight management systems; flight-critical vehicle components; fly-by-light control; fly-by-wire control; integrated controls; model development; permanent-magnet synchronous motors; pole-placement design; simulation-based design environments; snubber circuitry; tracking control algorithms; transient dynamics; Actuators; Aerospace control; Analytical models; Brushless motors; Computational modeling; Computer simulation; Propulsion; Robust stability; Synchronous motors; Vehicles;
fLanguage
English
Journal_Title
Aerospace and Electronic Systems, IEEE Transactions on
Publisher
ieee
ISSN
0018-9251
Type
jour
DOI
10.1109/7.993238
Filename
993238
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