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A modal H∞-norm-based performance requirement for damage-tolerant active controller design

Article dans une revue avec comité de lecture
Auteur
GENARI, Helói F.G
COFFIGNAL, Gérard
NOBREGA, Euripedes
ccMECHBAL, Nazih
86289 Laboratoire Procédés et Ingénierie en Mécanique et Matériaux [PIMM]

URI
http://hdl.handle.net/10985/11655
DOI
10.1016/j.jsv.2017.01.029
Date
2017
Journal
Journal of Sound and Vibration

Résumé

Damage-tolerant active control (DTAC) is a recent research area that encompasses control design methodologies resulting from the application of fault-tolerant control methods to vibration control of structures subject to damage. The possibility of damage occurrence is not usually considered in the active vibration control design requirements. Damage changes the structure dynamics, which may produce unexpected modal behavior of the closed-loop system, usually not anticipated by the controller design approaches. A modal H∞H∞ norm and a respective robust controller design framework were recently introduced, and this method is here extended to face a new DTAC strategy implementation. Considering that damage affects each vibration mode differently, this paper adopts the modal H∞H∞ norm to include damage as a design requirement. The basic idea is to create an appropriate energy distribution over the frequency range of interest and respective vibration modes, guaranteeing robustness, damage tolerance, and adequate overall performance, taking into account that it is common to have previous knowledge of the structure regions where damage may occur during its operational life. For this purpose, a structural health monitoring technique is applied to evaluate modal modifications caused by damage. This information is used to create modal weighing matrices, conducting to the modal H∞H∞ controller design. Finite element models are adopted for a case study structure, including different damage severities, in order to validate the proposed control strategy. Results show the effectiveness of the proposed methodology with respect to damage tolerance.

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Documents liés

Visualiser des documents liés par titre, auteur, créateur et sujet.

  • A reconfigurable damage-tolerant controller based on a modal double-loop framework 
    Article dans une revue avec comité de lecture
    GENARI, Helói F.G; COFFIGNAL, Gérard; NOBREGA, Euripedes; ccMECHBAL, Nazih (Elsevier, 2017)
    Active vibration control of flexible structures has received considerable attention in the latest decades. However, several related control problems remain open to new investigations such as robust performance, spillover ...
  • Damage-tolerant active control using a modal H∞H∞-norm-based methodology 
    Article dans une revue avec comité de lecture
    GENARI, Helói F.G; COFFIGNAL, Gérard; NOBREGA, Euripedes; ccMECHBAL, Nazih (Elsevier, 2017)
    A new approach for vibration reduction of flexible structures subject to damage is here proposed, based on modal H∞H∞-norm control. Considering that structural damage provokes different effects on each vibration mode, the ...
  • Spatial H∞ Approach to Damage Tolerant Active Control 
    Article dans une revue avec comité de lecture
    NOBREGA, Euripedes; ccMECHBAL, Nazih (Wiley-Blackwell, 2015)
    Damage tolerant active control is a new research area targeting to adapt fault tolerant control methods to mechanical structures submitted to damage. Active vibration control is a mature engineering area, using modern ...
  • Damage Tolerant Active Contro l: Concept and State of the Art 
    Conférence invitée
    NOBREGA, Euripedes; ccMECHBAL, Nazih (IFAC, 2012)
    Damage tolerant active control is a new research area relating to fault tolerant control design applied to mechanical structures. It encompasses several techniques already used to design controllers and to detect and to ...
  • Optimal Sensors Placement to Enhance Damage Detection in Composite Plates 
    Communication avec acte
    FENDZI, Claude; MOREL, Julien; COFFIGNAL, Gérard; ccMECHBAL, Nazih; ccGUSKOV, Mikhail; ccRÉBILLAT, Marc (2014)
    This paper examines an important challenge in ultrasonic structural health monitoring (SHM), which is the problem of the optimal placement of sensors in order to accurately detect and localize damages. The goal of this ...

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