Nondiagonal MIMO QFT Controller Design for Darwin-Type Spacecraft With Large Flimsy Appendages

Author:

Garcia-Sanz Mario1,Eguinoa Irene1,Barreras Marta1,Bennani Samir2

Affiliation:

1. Automatic Control and Computer Science Department, Public University of Navarra, Campus Arrosadia, 31006 Pamplona, Spain

2. Guidance, Navigation and Control Section, ESA/ESTEC, Keplerlaan 1, 2201 AZ Noordwijk, The Netherlands

Abstract

This paper deals with the design of robust control strategies to govern the position and attitude of a Darwin-type spacecraft with large flexible appendages. The satellite is one of the flyers of a multiple spacecraft constellation for a future ESA mission. It presents a 6×6 high order multiple-input–multiple-output (MIMO) model with large uncertainty and loop interactions introduced by the flexible modes of the low-stiffness appendages. The scientific objectives of the satellite require very demanding control specifications for position and attitude accuracy, high disturbance rejection, loop-coupling attenuation, and low controller order. The paper demonstrates the feasibility of a sequential nondiagonal MIMO quantitative feedback theory (QFT) strategy controlling the Darwin spacecraft and compares the results with H-infinity and sequential diagonal MIMO QFT designs.

Publisher

ASME International

Subject

Computer Science Applications,Mechanical Engineering,Instrumentation,Information Systems,Control and Systems Engineering

Reference54 articles.

1. ESA (European Space Agency), in www.esa.int

2. NASA-JPL (Jet Propulsion Laboratory), in http://www.jpl.nasa.gov/

3. Darwin Mission, in http://www.esa.int/science/darwin, E. S. A.-S. Science, Ed.

4. Darwin Mission II, in http://sci.esa.int/science-e/www/area/index.cfm?fareaid=28, E. S. A.-S. Programme, Ed.

5. Spacecraft Dynamics and Control

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