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Effects of bond gap thickness on the fracture of nano-toughened epoxy adhesive joints
Author(s)
Date Issued
2012-11
Date Available
2014-09-29T13:30:08Z
Abstract
The current work is a combined experimental-numerical study of the fracture behaviour of a nano-toughened, structural epoxy adhesive. The mode I fracture toughness of the adhesive is measured using tapered double-cantilever beam (TDCB) tests with various bond gap thicknesses ranging from 0.25 mm to 2.5 mm. Circumferentially deep-notched tensile specimens are independently employed to measure the cohesive strength of the adhesive as a function of constraint. The experimental TDCB test results are predicted numerically for each bond gap thickness using the Finite Volume method and a Dugdale cohesive zone model. A unique relationship between the fracture energy and the constraint level is established. The effect of bond gap thickness on the fracture behaviour of TDCB joints is hence directly attributed to the variation of the intrinsic fracture energy with constraint and not to the variation of the ‘far field’ plastic zone size with bond gap thickness. Using the well known Rice and Tracey void growth model, a link is established between the voids observed in the fracture process zone, the constraint imposed by the thickness of the adhesive and the resulting fracture energy.
External Notes
Other RMSIDs: 316516744
Type of Material
Journal Article
Publisher
Elsevier
Journal
Polymer
Volume
53
Issue
24
Start Page
5540
End Page
5553
Copyright (Published Version)
2012 Elsevier
Language
English
Status of Item
Peer reviewed
This item is made available under a Creative Commons License
File(s)
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Name
Cooper_et_al_Polymer_vol53-pages5540-5553_2012_Draft_for_UCD_Repository.pdf
Size
1.13 MB
Format
Adobe PDF
Checksum (MD5)
1a9db44ae543bff19d1ec410c2fa8a10
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