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Coupled Hygro-Mechanical Finite Element Method on Determination of the Interlaminar Shear Modulus of Glass Fiber-Reinforced Polymer Laminates in Bridge Decks under Hygrothermal Aging Effects.

Authors :
Jiang X
Luo C
Qiang X
Zhang Q
Kolstein H
Bijlaard F
Source :
Polymers [Polymers (Basel)] 2018 Aug 01; Vol. 10 (8). Date of Electronic Publication: 2018 Aug 01.
Publication Year :
2018

Abstract

To investigate the mechanical degradation of the shear properties of glass fiber-reinforced polymer (GFRP) laminates in bridge decks under hygrothermal aging effects, short-beam shear tests were performed following the ASTM test standard (ASTM D790-10A). Based on the coupled hygro-mechanical finite element (FE) analysis method, an inverse parameter identification approach based on short-beam shear tests was developed and then employed to determine the environment-dependent interlaminar shear modulus of GFRP laminates. Subsequently, the shear strength and modulus of dry (0% M <subscript>t</subscript> / M <subscript>∞</subscript> ), moisture unsaturated (30% M <subscript>t</subscript> / M <subscript>∞</subscript> and 50% M <subscript>t</subscript> / M <subscript>∞</subscript> ), and moisture saturated (100% M <subscript>t</subscript> / M <subscript>∞</subscript> ) specimens at test temperatures of both 20 °C and 40 °C were compared. One cycle of the moisture absorption⁻desorption process was also investigated to address how the moisture-induced residual damage degrades the shear properties of GFRP laminates. The results revealed that the shear strength and modulus of moisture-saturated GFRP laminates decreased significantly, and the elevated testing temperature (40 °C) aggravated moisture-induced mechanical degradation. Moreover, an unrecoverable loss of shear properties for the GFRP laminates enduring one cycle of the moisture absorption⁻desorption process was evident.

Details

Language :
English
ISSN :
2073-4360
Volume :
10
Issue :
8
Database :
MEDLINE
Journal :
Polymers
Publication Type :
Academic Journal
Accession number :
30960770
Full Text :
https://doi.org/10.3390/polym10080845