High Strain-Rate Behavior of Plain-Weave S-2 Glass/Vinyl Ester Composites

Author:

Gama Bazle A.1,Gillespie John W.2,Mahfuz Hassan,Raines Roshan P.,Haque Anwarul,Jeelani Shaik3,Bogetti Travis A.,Fink Bruce K.4

Affiliation:

1. 202 Center for Composite Materials (CCM), University of Delaware,Newark, DE 19716; Department of Materials Science and Engineering, University of Delaware andTuskegee University’s Center for Advanced Materials, Tuskegee University.

2. Department of Civil and Environmental Engineering, University of Delaware, Newark, DE 19716; † Department of Materials Science& Engineering, University of Delaware.

3. Tuskegee University’s Center for Advanced Materials (T-CAM), Tuskegee University, Tuskegee, AL 36088

4. U.S. Army Research Laboratory (ARL), Aberdeen Proving Ground, MD 21005

Abstract

Thick-section composites made from plain-weave S-2 glass fabric (24 oz./sq. yard) and vinyl ester (411-C50) resin have been tested over a wide range of strain-rates (200-1600 s -1) using a compression split Hopkinson pressure bar (SHPB) with a momentum trapping device. Experiments were performed in two material directions: thickness and fill. Three different types of specimens having rectangular cross sections were tested with thickness ranging from 3.8 mm to 12.7 mm. The strain-rate effects on maximum stresses and maximum non-linear strains have been characterized. The dominant failure modes of the material have been determined through optical and scanning electron microscopy (OM and SEM). It has been identified that the dynamic ultimate stress and failure strain is higher than the corresponding quasi-static values. The ultimate stress is found rate insensitive for both thickness and fill direction loading. The non-linear failure strain is also found to be rate insensitive in the case of thickness direction loading; however, the failure strain increases with strain-rate in the case of fill direction loading. The dominant dynamic failure modes in thickness direction loading are compressive matrix cracking, fiber breakage, and lateral flow of fiber bundles. In the fill direction loading, the dynamic failure modes are kink band formation, delamination, transverse matrix cracking, and longitudinal splitting.

Publisher

SAGE Publications

Subject

Materials Chemistry,Mechanical Engineering,Mechanics of Materials,Ceramics and Composites

Reference19 articles.

1. 2. Nemat-Nasser, S., Isaacs, J.B. and Starrett, J.E. 1991. Proc. R. Soc. Lond. A.371-391.

2. Compressive Resistance of Unidirectional GFRP Under High Rate of Loading

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