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Crack Path Selection in Adhesively-Bonded Joints: The Role of Material Properties
Authors:Buo Chen  David A Dillard  John G Dillard  Richard L Clark Jr
Affiliation:1. Engineering Science and Mechanics Department , Virginia Polytechnic Institute and State University , Blacksburg, Virginia, 24061, USA;2. Cooper Tire &3. Rubber Company , 701 Lima Avenue, Findlay, OH, 45840, USA;4. Engineering Science and Mechanics Department , Virginia Polytechnic Institute and State University , Blacksburg, Virginia, 24061, USA;5. Chemistry Department , Virginia Polytechnic Institute and State University , Blacksburg, Virginia, 24061, USA;6. Materials Science and Engineering Department , Virginia Polytechnic Institute and State University , Blacksburg, Virginia, 24061, USA;7. College of the Canyons , Santa Clarita, CA.
Abstract:This paper investigates the role of material properties on crack path selection in adhesively bonded joints. First, a parametric study of directionally unstable crack propagation in adhesively-bonded double cantilever beam specimens (DCB) is presented. The results indicate that the characteristic length of directionally unstable cracks varies with the Dundurs' parameters characterizing the material mismatch. Second, the effect of interface properties on crack path selection is investigated. DCB specimens with substrates treated using various surface preparation methods are tested under mixed mode fracture loading to determine the effect of interface properties on the locus of failure. As indicated by the post-failure analyses, debonding tends to be more interfacial as the mode II fracture component in the loading increases. On the other hand, failures in specimens prepared with more advanced surface preparation techniques appear more cohesive for given loading conditions. Using a high-speed camera to monitor the fracture sequence, DCB specimens are tested quasi-statically and the XPS analyses conducted on the failure surfaces indicate that the effect of crack propagation rate on the locus of failure is less significant when more advanced surface preparation techniques are used. The effect of asymmetric interface property on the behavior of directionally unstable crack propagation in adhesive bonds is also investigated. Geometrically-symmetric DCB specimens with asymmetric surface pretreatments are prepared and tested under low-speed impact. As indicated by Auger depth profile results, the centerline of the crack trajectory shifts slightly toward the interface with poor adhesion due to the asymmetric interface properties. Third, through varying the rubber content in the adhesive, DCB specimens with various fracture toughnesses are prepared and tested. An examination of the failure surfaces reveals that directionally unstable crack propagation is more unlikely to occur as the toughness of the adhesive increases, which is consistent with the analytical predictions that were discussed using an energy balance model.
Keywords:Directional stability of cracks  Locus of failure  Surface pretreatment  Crack path selection  Adhesively bonded joints  T-stress  Interfacial failure  Cohesive failure  Mixed mode fracture
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