AMD Based Active Structural Vibration Control Using H∞ Robust Design


Abstract eng:
A mathematical model of any real system is always just an approximation of the true, physical reality of the system dynamics. There are always uncertainties in the system modeling. This paper outlines a general approach to the design of an H∞ control of an Active Mass Damper (AMD) for vibration reduction of a building with mass and stiffness uncertainties. Linear fractional transformation (LFT) is introduced in this paper for uncertainties modeling. To facilitate computation of the H∞ controller, an efficient solution procedure based on Linear Matrix Inequalities (LMI), or the so-called LMI problem, is employed. The controller uses the acceleration signal for feedback. A two-story building model with an AMD is used to test the designed H∞ controller. Earthquake ground motion is introduced by a shaking table. A pair of diagonal shape memory alloy (SMA) wire braces are installed in the first floor to introduce stiffness uncertainty to the structure by controlling the temperature of the SMA wire brace. Masses are added to the structure to introduce mass uncertainty. Experiments were conducted and the results validate the effectiveness of the proposed H∞ controller in dealing with stiffness and mass uncertainties.

Contributors:
Conference Title:
Conference Title:
14th World Conference on Earthquake Engineering
Conference Venue:
Bejing (CN)
Conference Dates:
2008-10-12 / 2008-10-17
Rights:
Text je chráněný podle autorského zákona č. 121/2000 Sb.



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 Record created 2014-12-05, last modified 2014-12-05


Original version of the author's contribution as presented on CD, Paper ID: 11-0062.:
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