Improvement of interfacial compatibility of SiCf/Ti-6Al-4V composites by applying fiber coating and heat treatment
[Display omitted] •A novel approach to improving the interfacial compatibility based on fiber coating and subsequent heat treatment was presented.•A ductile fiber/matrix interfacial region with relativity lower interfacial shear strength in the SiCf/Ti-6Al-4V composites was obtained.•Interfacial mic...
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Veröffentlicht in: | Materials & design 2021-11, Vol.210, p.110042, Article 110042 |
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Sprache: | eng |
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•A novel approach to improving the interfacial compatibility based on fiber coating and subsequent heat treatment was presented.•A ductile fiber/matrix interfacial region with relativity lower interfacial shear strength in the SiCf/Ti-6Al-4V composites was obtained.•Interfacial microstructure evolution and reaction dynamics were systematically investigated.•Interfacial microstructures have crucial influence on the interfacial micromechanical properties, interfacial debonding and sliding behaviors.
A new approach to improving the interfacial compatibility of SiCf/Ti-6Al-4V compositesby using fiber coating coupled with subsequent heat treatment was presented. The SiCf/Ti-6Al-4V composites with C-coated and C/Mo-coated fibers were prepared using the foil-fiber-foilmethod and subsequently heat treated in vacuum at 750 °C to obtain several kinds of the SiCf/Ti-6Al-4V composites with different interfacial characteristics. Interfacial microstructures of these composites were systematically characterized by means ofscanning electron microscopy and X-ray energy dispersive spectroscopy to investigate the interfacial microstructure evolution and reaction dynamics. The effects of interfacial microstructures oninterfacial mechanical propertieswere also investigated using thin-slice fiber push-out tests. The results show that the brittle interfacial reaction layer of TiC in theC-coated SiCf/Ti-6Al-4V composites was obviously thickened and some microvoids even formed near the matrix with increasing heat treatment durations, whereas the matrix adjacent to Mo coating in the C/Mo-coated SiCf/Ti-6Al-4V composites gradually transformed into a ductile β-Ti layer. Interfacial shear strengths of the C/Mo-coated composites were slightly increased with increasing the heat treatment time, while those of theC-coated composites were remarkably improved. Critical issues onmodifying interfacial compatibility of the SiCf/Ti composites for further improving the mechanical behavior of the composites were discussed. |
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ISSN: | 0264-1275 1873-4197 |
DOI: | 10.1016/j.matdes.2021.110042 |