A cohesive zone type model, taking full account of finite geometry changes, is used to provide a unified framework for describing the process of interfacial decohesion from initial debonding through complete separation. Constitutive relations are specified independently for material phases and for the interface. This model permits the prediction of interfacial decohesion without the necessity of introducing some additional failure criterion. Also, since the mechanical response of the interface is specified in terms of both a critical interfacial strength and the work of separation per unit area, dimensional considerations introduce a characteristic length. Various issues associated with the analysis of interfacial failure phenomena within this framework will be discussed.
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Analyses of Interfacial Failure
A. Needleman
A. Needleman
Division of Engineering, Brown University, Providence, RI, U.S.A.
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A. Needleman
Division of Engineering, Brown University, Providence, RI, U.S.A.
Appl. Mech. Rev. May 1990, 43(5S): S274-S275
Published Online: May 1, 1990
Article history
Online:
April 30, 2009
Citation
Needleman, A. (May 1, 1990). "Analyses of Interfacial Failure." ASME. Appl. Mech. Rev. May 1990; 43(5S): S274–S275. https://doi.org/10.1115/1.3120826
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