Dimensionless analysis of constrained damping treatments


Autoria(s): Sher, B. R.; Moreira, R. A. S.
Data(s)

31/10/2013

31/10/2013

01/05/2013

Resumo

One of the most effective ways of controlling vibrations in plate or beam structures is by means of constrained viscoelastic damping treatments. Contrary to the unconstrained configuration, the design of constrained and integrated layer damping treatments is multifaceted because the thickness of the viscoelastic layer acts distinctly on the two main counterparts of the strain energy the volume of viscoelastic material and the shear strain field. In this work, a parametric study is performed exploring the effect that the design parameters, namely the thickness/length ratio, constraining layer thickness, material modulus, natural mode and boundary conditions have on these two counterparts and subsequently, on the treatment efficiency. This paper presents five parametric studies, namely, the thickness/length ratio, the constraining layer thickness, material properties, natural mode and boundary conditions. The results obtained evidence an interesting effect when dealing with very thin viscoelastic layers that contradicts the standard treatment efficiency vs. layer thickness relation; hence, the potential optimisation of constrained and integrated viscoelastic treatments through the use of properly designed thin multilayer configurations is justified. This work presents a dimensionless analysis and provides useful general guidelines for the efficient design of constrained and integrated damping treatments based on single or multi-layer configurations. (C) 2012 Elsevier Ltd. All rights reserved.

Identificador

Sher, B. R.; Moreira, R. A. S. - Dimensionless analysis of constrained damping treatments. Composite Structures. ISSN 0263-8223. Vol. 99 (2013), p. 241-254.

0263-8223

DOI: 10.1016/j.compstruct.2012.11.037

http://hdl.handle.net/10400.21/2829

Idioma(s)

eng

Publicador

Elsevier

Direitos

restrictedAccess

Palavras-Chave #Viscoelastic damping #Modal strain energy #Thin layers #Thickness optimisation #Dimensionless loss factor #Layerwise Finite-Element #Viscoelastic Layers #Sandwich Beam #Vibration Plates #Model #Core
Tipo

article