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The first crack strength as well as the ultimate strength of the composites found to be directly correlated to the isostatic crushing strength value which is dictated by the shell thickness (1 2 microns for GMS particles whereas several microns for FACs).
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The wear performance of such composites was found to be composition dependent with optimal parametric influences that was specific with the nature of the abrasive.
According to test results, woven composites are found to be superior to unidirectional composites in the protection limit of low velocity impact.
Accordingly, the SAC metal composites were found to have superior magnetic characteristics compared to the WAC composites.
The CHS composites were found to have higher porosity (62%) compared to the CHC composites (porosity 42%) and better mechanical properties.
Thus, mullite/SiC-whisker composites were found to have mode I oxidation behavior, while certain (mullite+ZrO2)/SiC-whisker composites were found to exhibit mode II behavior, followed by a mixed mode after severe exposures.
The resulting C/SiC composites were found to exhibit improved mechanical properties with respect to the interphase-free composite.
The compressive strength of ceramic-reinforced aluminium matrix composites was found to be increased with the increase in reinforcement fraction in the aluminium matrix composites and with increasing strain rate during compression.
Nanoindentation hardness and modulus of DM composites were found to be comparable to their SM counterparts.
As far as bending strength and stiffness was concerned, VSSD composites were found to be superior to USSD type.
The composites were found to be initially effective at reducing the amount of heat released during oxidation.
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