Fixed-order mixed norm designs for building vibration control
Author(s) -
Mark Whorton,
Anthony Calise
Publication year - 2000
Publication title -
41st structures, structural dynamics, and materials conference and exhibit
Language(s) - English
Resource type - Conference proceedings
DOI - 10.2514/6.2000-1538
Subject(s) - vibration , norm (philosophy) , control theory (sociology) , computer science , vibration control , control engineering , control (management) , engineering , acoustics , physics , artificial intelligence , political science , law
This study investigates the use of H2, mu-synthesis, and mixed H2/mu methods to construct full order controllers and optimized controllers of fixed dimensions. The benchmark problem definition is first extended to include uncertainty within the controller bandwidth in the form of parametric uncertainty representative of uncertainty in the natural frequencies of the design model. The sensitivity of H2 design to unmodeled dynamics and parametric uncertainty is evaluated for a range of controller levels of authority. Next, mu-synthesis methods are applied to design full order compensators that are robust to both unmodeled dynamics and to parametric uncertainty. Finally, a set of mixed H2/mu compensators are designed which are optimized for a fixed compensator dimension. These mixed norm designs recover the H2 design performance levels while providing the same levels of robust stability as the mu designs. It is shown that designing with the mixed norm approach permits higher levels of controller authority for which the H2 designs are destabilizing. The benchmark problem is that of an active tendon system. The controller designs are all based on the use of acceleration feedback.
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