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Then, the onset and progress of three damage mechanisms (transverse matrix cracking, matrix crack induced delamination and free-edge delamination) for both regions are analyzed by monitoring the specimen's free-edge.
Thus, several different failure modes of braided composites under mechanical loadings were included, such as fibre fracture, fibre kinking, matrix cracking, matrix crushing, nonlinear shearing and delamination.
The model accounts for fibre and matrix cracking, matrix plasticity, and fibre-matrix interfacial sliding through seven characteristic non-dimensional parameters, which combine geometric, phase and interface properties.
The failure mechanisms at micro level include fiber fracture, long range fiber bundle pull-out, fiber bridging, fiber/matrix interface debonding, matrix cracking, matrix fragment desquamating and matrix peeling.
To accomplish this goal a progressive failure model was implemented in a finite element code to predict the failure modes (fibre tensile failure, fibre compressive failure, matrix cracking, matrix crushing, and delamination), considering both Hou and Hashin criteria.
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A linearly decreasing traction separation law describes matrix cracking in brittle matrix.
These techniques allow locating and differentiating the main damage mechanisms: matrix cracking, fibre/matrix debonding and fibre breakages.
A microscopy study of the bearing plane revealed that the main fatigue driving mechanisms were matrix cracking and fibre matrix debonding.
The three clusters correspond to three kinds of damage modes such as matrix cracking, fiber/matrix debonding, delamination and fiber breakage.
The effects of matrix cracking, fiber-matrix interfacial debonding and change in the microstructure of natural fibers are all considered in this theoretical model.
The source of the sensing damage of HPFRCC in tension significantly depends upon matrix cracking and fiber matrix debonding.
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