Труды КНЦ (Технические науки вып.1/2025(16))

Труды Кольского научного центра РАН. Серия: Технические науки. 2025. Т. 16, № 1. С. 262-267. Transactions of the Kola Science Centre of RAS. Series: Engineering Sciences. 2025. Vol. 16, No. 1. P. 262-267. 10. Cabrero J., Audubert F., Pailler R. Fabrication and characterization of sintered TiC-SiC composites // J. European Ceramic Society. 2011. Vol. 31, no. 3. P. 313-320. doi:10.1016/j.jeurceramsoc.2010.10.01. 11. Monotonic tension, fatigue and creep behavior of SiC-fiber-reinforced SiC-matrix composites: a review / S. Zhu [et al.] // Composites Science and Technology. 1999. Vol. 59, no. 6. P. 833-851. doi:10.1016/S0266-3538(99)00014-7. 12. Zhang L., Yang H., Guo X. Preparation and properties of silicon carbide ceramics enhanced by TiN nanoparticles and SiC whiskers // Scripta Materialia. 2011. Vol. 65, no. 3. P. 186-189. doi:10.1016/j.scriptamat.2011.03.034. 13. Wei G., Becher P. Improvements in mechanical properties in SiC by addition of TiC particles // J. American Ceramic Society. 1984. Vol. 67, no. 8. P. 571-574. doi:10.1111/j.1151-2916.1984.tb19174.x. 14. Endo H., Ueki M., Kubo H. Microstructure and mechanical properties of hot- pressed SiC-TiC composites // J. Materials Science. 1991. Vol. 26. P. 3769-3774. doi:10.1007/BF01184969. 15. Microstructure and materials properties of SiC-TiB2 particulate composites / C. McMurtry [et al.] // American Ceramic Society Bulletin. 1987. Vol. 66. P. 325-329. 16. Khodaei M., Yaghobizadeh O., Reza B. Effects of different sintering methods on the properties of SiC-TiC, SiC-TiB 2 composites // Intern. J. refractory metals and hard materials. 2018. Vol. 70. P. 19-31. doi:10.1016/j.ijrmhm.2017.09.005. 17. Гаршин А. П., Чулкин С. Г. Реакционно-спеченные карбидокремниевые материалы конструкционного назначения. Физико-механические и триботехнические свойства. СПб.: Изд-во Политехн. ун-та, 2006. 83 с. 18. Самойлов В. М., Породзинский И. А. Получение и исследование карбидкремниевых материалов на основе реакционносвязанного карбида кремния // Перспективные материалы. 2014. № 3. С. 67-71. 19. Methods of forming geometrically complex manufactured products from silicon-carbide based, heat-resistant, ceramic materials / M. A. Markov [et al.] // Glass and Ceramics. 2023. Vol. 80, no. 7-8. P. 277-282. doi:10.1007/s10717-023-00598-2. 20. Belyakov A. N., Markov M. A., Chekuryaev A. N. Investigation of the reaction-sintered B 4 C-SiC materials produced by hot slip casting // Glass Physics and Chemistry. 2023. Vol. 49, no. 3. P. 306-313. doi:10.1134/S1087659623600060. 21. Effect of the carbon component on the strength of reaction-sintered silicon-carbide ceramics / D. A. Dyuskina [et al.] // J. Machinery Manufacture and Reliability. 2024. Vol. 53, no. 2. P. 121-126. doi:10.1134/S1052618824020055. 22. Investigation of the structure and physicomechanical characteristics of reaction-sintered materials B 4 C-SiC / A. N. Belyakov [et al.] // Refractories and Industrial Ceramics. 2023. Vol. 64, no. 2. P. 67-70. doi:10.1007/s11148-023-00806-0. 23. К вопросу о получении карбидокремниевых материалов методом реакционного спекания / Л. Н. Дьячкова [и др.] // Инженерно-физический журнал. 1997. Т. 70, № 2. С. 260-263. 24. Microstructure, porosity and resistivity in reaction-bonded silicon carbide / Zh. Lu [et al.] // Xi'an jiaotong daxue xuebao. 1999. Vol. 33, no. 4. P. 48-51. 25. Данилович Д. П., Румянцев В. И., Орданьян С. С. Система SiC-TiC-TiB2 как основа керамоматричных композиционных материалов // Вопросы материаловедения. 2009. no. 4 (60). С. 42-47. References 1. Ruys A. J. Silicon carbide ceramics structure, properties, and manufacturing. Elsevier, 2023, 585 p. 2. Markov M. A., Krasikov A. V., Kravchenko I. N., Erofeev M N., Bykova A. D., Belyakov A. N. Development of novel ceramic construction materials based on silicon carbide for products of complex geometry. Journal o fMachineryManufacture and Reliability, 2021, Vol. 50, no. 2, рр. 158-163. doi:10.3103/S1052618821020096. 3. Izhevskyi V. A., Genova L. A., Bressiani J. C., Bressiani A. H. Review article: Silicon carbide. Structure, properties and processing. Ceramica, 2000, Vol. 46 (297), pp. 4-13. doi:10.1590/S0366-69132000000100002. 4. Belyakov A. N., MarkovM. A., Kravchenko I. N., Kashtanov A. D., Dyuskina D. A., Bykova A. D., Chekuryaev A. G. Contemporary materials and their application in the construction of special engineering high-temperature objects. Refractories and Industrial Ceramics, 2024, Vol. 64, no. 3, pp. 256-264. doi:10.1007/s11148-024-00835-3. 5. Belyakov A. N., Markov M. A., Dyuskina D. A., Bykova A. D., Chekuryaev A. G., Kashtanov A. D. A comparative study of methods for obtaining silicon carbide ceramic materials. Refractories and Industrial Ceramics, 2023, Vol. 64, no. 3, pp. 299-310. doi:10.1007/s11148-024-00842-4. 6. Belyakov A. N., MarkovM. A., Kravchenko I. N., Bykova A. D., Dyuskina D. A., Chekuryaev A. G., Kashtanov A. D. Study of the structural, physical, and mechanical characteristics of reaction-sintered silicon carbide ceramics. Journal o fMachineryManufacture andReliability, 2023, Vol. 52, Suppl. 1, pp. S74-S81. doi:10.3103/S1052618823090029. 7. Chin H., Cheong K., Ismail A. A review on die attach materials for SiC-based high-temperature power devices. Metallurgical andMaterials Transactions B, 2010, Vol. 41, pp. 824-832. doi:10.1007/s11663-010-9365-5. 8. Markov M. A., Vikhman S. N., Belyakov A. N. High-temperature bending tests of reaction-sintered silicon carbide-based ceramic materials. Russian Journal o f Applied Chemistry, 2023, Vol. 96, no. 1, pp. 16-20. doi:10.1134/S1070427223010032. © Быкова А. Д., 2025 266

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