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Size effects of the strength and elastic properties of individual phases and interphase boundaries of polycrystalline materials

  • Proceedings of the International Interdisciplinary Symposium “Ordering in Minerals and Alloys” OMA-18 and Proceedings of the International Interdisciplinary Symposium “Order, Disorder, and the Properties of Oxides” ODPO-18
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Bulletin of the Russian Academy of Sciences: Physics Aims and scope

Abstract

Size effects of hardness are studied and numeric values of Young’s modulus E, hardness H, and fracture toughness coefficient K c of individual phases and interphase boundaries of polycrystalline samples of ferruginous quartzite are determined by means of micro- and nanoindentation methods. It is found that the interphase boundary of magnetite and hematite is the one most strengthened, while the boundary of the hematite and quartz is the one least durable.

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Correspondence to A. N. Kochanov.

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Original Russian Text © Y.I. Golovin, S.D. Victorov, A.I. Tyurin, A.N. Kochanov, A.V. Schyklinov, T.S. Pirozhkova, I.A. Shuvarin, 2016, published in Izvestiya Rossiiskoi Akademii Nauk. Seriya Fizicheskaya, 2016, Vol. 80, No. 5, pp. 573–577.

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Golovin, Y.I., Victorov, S.D., Tyurin, A.I. et al. Size effects of the strength and elastic properties of individual phases and interphase boundaries of polycrystalline materials. Bull. Russ. Acad. Sci. Phys. 80, 518–521 (2016). https://doi.org/10.3103/S1062873816050075

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  • DOI: https://doi.org/10.3103/S1062873816050075

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