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Published in: Applied Composite Materials 4/2013

01-08-2013

Low-Velocity Impact Response and Finite Element Analysis of Four-Step 3-D Braided Composites

Authors: Baozhong Sun, Yan Zhang, Bohong Gu

Published in: Applied Composite Materials | Issue 4/2013

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Abstract

The low-velocity impact characters of 3-D braided carbon/epoxy composites were investigated from experimental and finite element simulation approaches. The quasi-static tests were carried out at a constant velocity of 2 mm/min on MTS 810.23 material tester system to obtain the indentation load–displacement curves and indentation damages. The low-velocity tests were conducted at the velocities from 1 m/s to 6 m/s (corresponding to the impact energy from 3.22 J to 116 J) on Instron Dynatup 9250 impact tester. The peak force, energy for peak force, time to peak force, and total energy absorption were obtained to determine the impact responses of 3-D braided composites. A unit cell model was established according to the microstructure of 3-D braided composites to derive the constitutive equation. Based on the model, a user-defined material subroutine (VUMAT) has been compiled by FORTRAN and connected with commercial finite element code ABAQUS/Explicit to calculate the impact damage. The unit cell model successfully predicted the impact response of 3-D braided composites. Furthermore, the stress wave propagation and failure mechanisms have been revealed from the finite element simulation results and ultimate damage morphologies of specimens.

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Metadata
Title
Low-Velocity Impact Response and Finite Element Analysis of Four-Step 3-D Braided Composites
Authors
Baozhong Sun
Yan Zhang
Bohong Gu
Publication date
01-08-2013
Publisher
Springer Netherlands
Published in
Applied Composite Materials / Issue 4/2013
Print ISSN: 0929-189X
Electronic ISSN: 1573-4897
DOI
https://doi.org/10.1007/s10443-012-9279-2

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