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Structure, properties and phase composition of composite materials based on the system NiTi-TiB2 V. V. Promakhov, A. E. Matveev, N. Schulz [et al.]

Contributor(s): Promakhov, Vladimir V | Matveev, Alexey E | Schulz, Nikita | Dronov, Philip | Zhukov, Alexander S | Vorozhtsov, Alexander BMaterial type: ArticleArticleContent type: Текст Media type: электронный Subject(s): композиционные материалы | самораспространяющийся высокотемпературный синтез | высокая температура | вакуумное спекание | фазовый составGenre/Form: статьи в журналах Online resources: Click here to access online In: Materials Vol. 15, № 15. P. 5327 (1-12)Abstract: This article considers issues pertinent to the research of the phase composition, structure and mechanical properties of materials obtained from powders of composite (Ni-Ti)-TiB2, which have prospective applications in aerospace and automotive industry and engine construction. The starting powder materials (Ni-Ti)-TiB2 were obtained by self-propagating high-temperature synthesis (SHS). Research samples were produced using high-temperature vacuum sintering. It was shown that the use of such materials increases the wettability of the particles and allows the production of composites, the density of which is 95% of the theoretical one. Average particle size was 1.54 µm, average microhardness was 8 GPa, which is an order of magnitude higher than the average microhardness of pure nickel-based and titanium-based alloys, and the ultimate strength values were comparable to those of tungsten-based heavy alloys.
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This article considers issues pertinent to the research of the phase composition, structure and mechanical properties of materials obtained from powders of composite (Ni-Ti)-TiB2, which have prospective applications in aerospace and automotive industry and engine construction. The starting powder materials (Ni-Ti)-TiB2 were obtained by self-propagating high-temperature synthesis (SHS). Research samples were produced using high-temperature vacuum sintering. It was shown that the use of such materials increases the wettability of the particles and allows the production of composites, the density of which is 95% of the theoretical one. Average particle size was 1.54 µm, average microhardness was 8 GPa, which is an order of magnitude higher than the average microhardness of pure nickel-based and titanium-based alloys, and the ultimate strength values were comparable to those of tungsten-based heavy alloys.

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