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Mixed mode testing of adhesive layer is performed with the Mixed mode double Cantilever Beam specimen.
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The inability to develop representative interlaminar failure in composites with current mixed mode test configurations motivated this particular investigation.
The results obtained also suggest that the empirical equations proposed in other studies are not suitable for modeling the mixed mode test results.
Motivated by the lack of available mixed-mode test data in the literature on graphene nanocomposites, this article aims to investigate two cases: (a) the changes in mixed-mode fracture properties of a thermoset polymer (EPON 862) reinforced with hydrogen passivated nanographene platelets (HP-NGPs) and, (b) Mode I fracture properties of EPON 862/IM7 unidirectional laminate with dispersed HP-NGPs.
Several two and three dimensional examples ranging from standard delamination tests (the mixed mode bending test) to the L-shaped specimen with a fillet, three dimensional (3D) double cantilever beam and a 3D singly curved thick-walled laminate are provided.
For the above specimen types, both Mode I and mixed mode FCG tests are first performed.
A generalized maximum tangential stress criterion is then employed for predicting the mixed mode fracture test results.
The Brazilian disk, a classic mixed mode fracture test specimen, was adopted for the experimental characterization of the crack initiation.
Numerical examples are presented for the analyses of benchmark composite delamination problems which include the double cantilever beam, the end notch flexure and the mixed mode bending tests.
The semi-circular bending specimen (SCB) is employed to perform a total number of 36 mixed mode fracture tests on the prepared nanocomposites.
By manufacturing the specimens with different residual stresses, mixed mode fracture tests with various mixed mode ratios were conducted and the effect of the mixed mode ratio on the energy release rates was investigated.
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