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To model the debonding and matrix cracking formation in RVEs, cohesive zone model (CZM) and Extended finite element method (XFEM) are applied.
The ceramic layers were analyzed using optical microscope, scanning electron microscope (SEM), X-ray diffractometer (XRD) and microhardness testing techniques for the study of microstructure, topography, cracking formation and hardness.
The results show different considerations regarding distinct materials: in terms of the effectiveness of fibers, the addition of polypropylene and polyethylene macro fibers exhibits the best performance and leads to a certain delay and a wide decreasing in cracking formation.
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Continued bending leads to crack formation and failure.
Detachment initiates when the opening of the cohesive zone attains a critical value, giving way to crack formation.
Crystallographic texture and grain boundary distribution are introduced as a new method of reducing susceptibility to crack formation and propagation.
The toughness of the tested materials were determined and the defects leading to crack formation are classified.
During load application, attention was paid to crack formation and its propagation in the infill.
The authors hypothesize the CNT bridges helped maintain the conductivity of the composition film regardless crack formation and propagation.
The cohesive force dissipates, at least partially, the energy related to crack formation.
This cohesive force dissipates, at least partially, the energy related to crack formation.
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