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Constitutive Modelling of Resins in the Stiffness Domain.

Authors :
Klasztorny, M.
Source :
Mechanics of Composite Materials. Sep2004, Vol. 40 Issue 5, p443-452. 10p.
Publication Year :
2004

Abstract

An analytic method for inverting the constitutive compliance equations of viscoelasticity for resins is developed. These equations describe the HWKK/H rheological model, which makes it possible to simulate, with a good accuracy, short-, medium- and long-term viscoelastic processes in epoxy and polyester resins. These processes are of first-rank reversible isothermal type. The time histories of deviatoric stresses are simulated with three independent strain history functions of fractional and normal exponential types. The stiffness equations are described by two elastic and six viscoelastic constants having a clear physic meaning (three long-term relaxation coefficients and three relaxation times). The time histories of axiatoric stresses are simulated as perfectly elastic. The inversion method utilizes approximate constitutive stiffness equations of viscoelasticity for the HWKK/H model. The constitutive compliance equations for the model are a basis for determining the exact complex shear stiffness, whereas the approximate constitutive stiffness equations are used for determining the approximate complex shear stiffness. The viscoelastic constants in the stiffness domain are derived by equating the exact and approximate complex shear stiffnesses. The viscoelastic constants are obtained for Epidian 53 epoxy and Polimal 109 polyester resins. The accuracy of the approximate constitutive stiffness equations are assessed by comparing the approximate and exact complex shear stiffnesses. The constitutive stiffness equations for the HWKK/H model are presented in uncoupled (shear/bulk) and coupled forms. Formulae for converting the constants of shear viscoelasticity into the constants of coupled viscoelasticity are given as well. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
01915665
Volume :
40
Issue :
5
Database :
Academic Search Index
Journal :
Mechanics of Composite Materials
Publication Type :
Academic Journal
Accession number :
14973484
Full Text :
https://doi.org/10.1023/B:MOCM.0000047235.48540.fc