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Fiber reinforced ceramic composites demonstrate much higher toughness and strain-to-failure than conventional monolithic ceramics.
A microclustered morphology provides a much higher toughness than a uniform particle distribution.
In all cases a much higher toughness of the material containing the beta-nucleating agent (beta NA) can be observed.
Although the phenomena need further investigation, it was found that the crack growth could be suppressed by using a resin matrix with a much higher toughness.
Our analysis on an individual μ-SD showed that the failure of a μ-SD under tension involves the delamination of the prolonged spiral interface, giving rise to much higher toughness compared to those of the planar counterpart.
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Specimens of types I and II exhibited considerably rougher fracture surfaces and much higher fracture toughness than type III.
PPC demonstrates much higher fracture toughness and far longer fatigue life than SPC at any stress level.
This kind of microstructure leads to a much higher impact toughness, 32 J/cm2, in comparison with the value, i.e., no more than 20 J/cm2, of the conventional quenching and tempering (Q T) treatment at the same hardness level.
Compared to the HVOF-sprayed WC-Co coating with micro-sized WC particles, WC- nanoWC-Co) exhibited much higher hardness and toughness and thereby much higher WC- nanoWC-Coce.
Furthermore, results indicated a much higher interfacial strength and toughness in shear when compared to the tensile mode of delamination.
Interestingly, the composite exhibits much higher strength and fracture toughness than HfC due to its fine and anisotropic grains.
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