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Published in: Experimental Mechanics 1/2016

16-05-2015

Dynamic Crack Growth Normal to an Interface in Bi-Layered Materials: An Experimental Study Using Digital Gradient Sensing Technique

Authors: B.M. Sundaram, H.V. Tippur

Published in: Experimental Mechanics | Issue 1/2016

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Abstract

The dynamic fracture behavior of layered architectures is experimentally studied. Specifically, crack penetration, trapping, and branching at an interface are examined. A newly introduced optical technique called Digital Gradient Sensing (DGS) that quantifies elasto-optic effects due to a non-uniform state of stress is extended to perform full-field measurements during the fracture event using ultrahigh-speed photography. By exploiting the richness of two simultaneously measured orthogonal stress gradient fields, a modified approach for extracting stress intensity factors (SIFs) is implemented for propagating crack-tips under mixed-mode conditions. The method is first calibrated using a quasi-static experiment complemented by finite element simulations before implementing it for studying dynamic mixed-mode fracture mechanics of layered configurations. The layered systems considered consist of two PMMA sheets bonded using an acrylic adhesive with the interface oriented normally to the initial crack propagation direction. Interfaces are characterized as ‘strong’ and ‘weak’ by their crack initiation toughness. The dynamic fracture of monolithic PMMA sheet is also studied in the same configuration for comparison. The crack growth and fracture parameter histories of propagating cracks are evaluated. The interface is shown to drastically perturb crack growth behavior resulting in higher dissipation of fracture energy by exciting crack trapping, branching, and mixed-mode growth mechanisms.

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Appendix
Available only for authorised users
Footnotes
1
The crack speeds in the interface vicinity show gyrations and hence using transient crack-tip field descriptions [28] involving derivatives of SIF values are more appropriate. However, in view of potential inaccuracies associated with numerical differentiation of SIF values, a steady-state approximation is adopted in this work.
 
2
Note that data for only one of the two cracks is shown in Fig. 17.
 
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Metadata
Title
Dynamic Crack Growth Normal to an Interface in Bi-Layered Materials: An Experimental Study Using Digital Gradient Sensing Technique
Authors
B.M. Sundaram
H.V. Tippur
Publication date
16-05-2015
Publisher
Springer US
Published in
Experimental Mechanics / Issue 1/2016
Print ISSN: 0014-4851
Electronic ISSN: 1741-2765
DOI
https://doi.org/10.1007/s11340-015-0029-x

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