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Abstract

The linear viscoelastic behavior of a soda-lime-silica glass under low frequency shear loading is investigated in the glass transition range. Using the time-temperature superposition technique, the master curves of the shear dynamic relaxation moduli are obtained at a reference temperature of 566°C. A method to determine the viscoelastic constants from dynamic relaxation moduli is proposed. However, some viscoelastic constants cannot be directly measured from the experimental curves and others cannot be precisely obtained due to non-linearity effects at very low frequencies. The generalized Maxwell model is investigated from the experimental dynamic moduli without fixing the viscoelastic constants. A set of parameters is shown to be in good agreement with the experimental dynamic relaxation moduli, but does not give the correct values of the viscoelastic constants of the investigated glass. The soda-lime-silica glass exhibits a non-linear viscoelastic behavior at very low stress level which is usually observed for organic glasses. This non-linear behavior is questioned.

Details

Title
Generalized Maxwell model for the viscoelastic behavior of a soda-lime-silica glass under low frequency shear loading
Author
Lucas Duffrène 1 ; Gy, René 2 ; Burlet, Hélène 3 ; Piques, Roland 3 ; Faivre, Annelise 4 ; Sekkat, Anas 4 ; Perez, Joseph 4 

 Saint-Gobain Recherche, Aubervilliers, France; Centre des Matériaux, Ecole de Mines de Paris URA CNRS 866, Evry Cedex, France 
 Saint-Gobain Recherche, Aubervilliers, France 
 Centre des Matériaux, Ecole de Mines de Paris URA CNRS 866, Evry Cedex, France 
 Groupe d'Etude de Métallurgie Physique et Physique des Matériaux, INSA Lyon URA CNRS 341, Villeurbanne Cedex, France 
Pages
173-186
Publication year
1997
Publication date
Mar 1997
Publisher
Springer Nature B.V.
ISSN
00354511
e-ISSN
14351528
Source type
Scholarly Journal
Language of publication
English
ProQuest document ID
2262030257
Copyright
Rheologica Acta is a copyright of Springer, (1997). All Rights Reserved.