Eakins E., Jayaseelan D.D., Lee W.E. Toward oxidation-resistant ZrB2-SiC ultra high temperature ceramics. Metallurgical and Materials Transactions A. 2011, vol. 42A, pp. 878–887.
Narottam P.B., Jacques L. Ceramic Matrix Composites: Materials, Modeling and Technology. New York: WILEY, 2015. 712 p.
Bogachev E.А., Timofeev А.N. Svojstva konstruktsionnogo okislitel’no-stojkogo kompozitsionnogo materiala s karbidokremnievoj matritsej iz gazovoj fazy monometilsilana dlya izdelij aviakosmicheskoj tekhniki [Properties of constructional oxidation-resistant composite material with silicon-carbide matrix from the gas phase of monomethylsilane for aerospace products]. Trudy konferentsii “Vysokotemperaturnye keramicheskie kompozitsionnye materialy i zashhitnye pokrytiya” [Proceedings of the conference “High-temperature ceramic composites and protective coatings”], FSUE “All-Russian Scientific Research Institute of Aviation Materials”, 2014. In Russ.
Reznik S.V., Mikhailovskii K.V., Prosuntsov P.V. Heat and mass transfer in the chemical vapor deposition of silicon carbide in a porous carbon–carbon composite material for a heat shield. Journal of Engineering Physics and Thermophysics, 2017, vol. 90, no. 2, pp. 291–300.
Vignoles G.L., Aspa Y., Quintard M. Modelling of carbon-carbon composite ablation in rocket nozzles. Composites Science and Technology, 2010, vol. 70, pp. 1303–1311.
Vignoles G.L., Lachaud J., Aspa Y., Goyhénèche J-M. Ablation of carbon-based materials: Multiscale roughness modeling. Composites Science and Technology, 2009, vol. 69, iss. 9, pp.1470–1477. DOI:10.1016/0008-6223(95)00034-B.
Vignoles G.L., Lachaud J., Aspa Y. Environmental effects: ablation of C/C materials-surface dynamics and effective reactivity. Ceramic Matrix Composites: Materials, Modeling and Technology, 2014, pp. 353–384. DOI: 10.1016/0008-6223(95)00034-B.
Ferguson J.C., Panerai F., Lachaud J., Mansour N.N. Theoretical study on the micro-scale oxidation of resin-infused carbon ablators. Carbon, 2017, vol. 121, pp. 552–562.
Gorskii V.V., Dudkina T.I., Gordeev A.N. Aerothermochemical destruction of silicon carbide washed by a high-temperature flow of air. High Temperature, 2012, vol. 50, no. 5, pp. 646–652.
Gorskiy V.V., Gordeev A.N., Vasil’evskii S.A., Dudkina T.I, Sysenko V.A. Аprobatsiya raschetno-teoreticheskoj modeli aero-termokhimicheskoj destruktsii karbida kremniya, omyvaemogo vysokotemperaturnym potokom vozdukha [Testing of design-theoretical model of silicon carbide aero thermo-chemical degradation washed by high-temperature air stream]. Inzhenernyj zhurnal: nauka i innovatsii – Engineering Journal: Science and Innovation, 2016, no. 11, pp. 1–11. In Russ.
Gorskiy V.V. Teoreticheskie osnovy rascheta ablyatsionnoj teplovoj zashhity [Theoretical basis of calculating ablative thermal protection]. Moscow: Nauchnyj mir, 2015. 687 p. In Russ.
Barinov D.Y., Prosuntsov P.V. Razrabotka matematicheskoj modeli progreva I razrusheniya uglerod-keramicheskikh kompozitsionnykh materialov [Development of a mathematical model of heating and destruction of carbon-ceramic composite materials]. Teplovye protsessy v tekhnike – Thermal processes in engineering, 2017, vol. 9, no. 7, pp. 311–318. In Russ.
Bogachev E.A. Vysokotemperaturnye konstruktsionnye kompozitsionnye materialy s minimal’noj strukturnoj yachejkoj [High temperature structural composites with a minimal structure cell]. Kompozity i nanostruktury – Composites and Nanostructures, 2017, vol. 9, no. 1, pp. 12–23. In Russ.
Chirkin V.S. Teplofizicheskie svojstva materialov yadernoj tekhniki [Thermophysical properties of materials for nuclear industry]. Moscow: Аtomizdat, 1967. 474 p. In Russ.
mai.ru — informational site of MAI Copyright © 2009-2024 by MAI |