PG-EAM - Programa de Pós-Graduação em Engenharia Aeronáutica e Mecânica
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Artigo 2014

A time-domain finite element model reduction method for viscoelastic linear and nonlinear systems

Autores

de Lima, Antônio Marcos Gonçalves
Bouhaddi, Noureddine
Belonsi, Marcelo

Latin American Journal of Solids and Structures , vol. 12 , no. 6 , pp. 1182-1201

ISSN: 16797817

18
Citações
4
Autores

Resumo

© 2015 Brazilian Association of Computational Mechanics. All rights reserved.Many authors have shown that the effective design of viscoelastic systems can be conveniently carried out by using modern mathematical models to represent the frequency- and temperature-dependent behavior of viscoelastic materials. However, in the quest for design procedures of real-word engineering structures, the large number of exact evaluations of the dynamic responses during iterative procedures, combined with the typically high dimensions of large finite element models, makes the numerical analysis very costly, sometimes unfeasible. It is especially true when the viscoelastic materials are used to reduce vibrations of nonlinear systems. As a matter of fact, which the resolution of the resulting nonlinear equations of motion with frequency- and temperature-dependent viscoelastic damping forces is an interesting, but hard-to-solve problem. Those difficulties motivate the present study, in which a time-domain condensation strategy of viscoelastic systems is addressed, where the viscoelastic behavior is modeled by using a four parameter fractional derivative model. After the discussion of various theoretical aspects, the exact and reduced time responses are calculated for a three-layer sandwich plate by considering nonlinear boundary conditions.

Palavras-chave

Condensation Fractional deriva-tive model Nonlinear vibrations Passive vibration control Viscoelastic damping

Civil and Structural Engineering (ENGI) Materials Science (all) (MATE) Automotive Engineering (ENGI) Aerospace Engineering (ENGI) Ocean Engineering (ENGI) Mechanics of Materials (ENGI) Mechanical Engineering (ENGI)
: Scopus
Última atualização: 2026-06-25
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