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Journal article

Deformation analysis of polymers composites: rheological model involving time-based fractional derivative

From

China University of Mining and Technology1

Department of Wind Energy, Technical University of Denmark2

Composites Mechanics and Materials Mechanics, Department of Wind Energy, Technical University of Denmark3

A modeling approach to time-dependent property of Glass Fiber Reinforced Polymers (GFRP) composites is of special interest for quantitative description of long-term behavior. An electronic creep machine is employed to investigate the time-dependent deformation of four specimens of dog-bond-shaped GFRP composites at various stress level.

A negative exponent function based on structural changes is introduced to describe the damage evolution of material properties in the process of creep test. Accordingly, a new creep constitutive equation, referred to fractional derivative Maxwell model, is suggested to characterize the time-dependent behavior of GFRP composites by replacing Newtonian dashpot with the Abel dashpot in the classical Maxwell model.

The analytic solution for the fractional derivative Maxwell model is given and the relative parameters are determined. The results estimated by the fractional derivative Maxwell model proposed in the paper are in a good agreement with the experimental data. It is shown that the new creep constitutive model proposed in the paper needs few parameters to represent various time-dependent behaviors.

Language: English
Publisher: Springer Netherlands
Year: 2017
Pages: 151-161
Journal subtitle: An International Journal Devoted To the Time-dependent Behaviour of Materials and Structures
ISSN: 15732738 and 13852000
Types: Journal article
DOI: 10.1007/s11043-016-9323-y
ORCIDs: Mishnaevsky, Leon

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