Аннотация:
В работе рассматривается вопрос о влиянии плавления продуктов горения на закономерности горения на примере эквиатомной смеси никеля с алюминием. Обнаружено, что в случае плавления конечного продукта существует область, в которой температура горения (максимальная) остается постоянной, а скорость горения сильно (в несколько раз) изменяется. Это позволило обнаружить новую элементарную модель горения и определить некоторые теплофизические константы в высокотемпературной области.
Образец цитирования:
В. М. Маслов, И. П. Боровинская, А. Г. Мержанов, “К вопросу о механизме безгазового горения”, Физика горения и взрыва, 12:5 (1976), 703–709; Combustion, Explosion and Shock Waves, 12:5 (1976), 631–636
\RBibitem{MasBorMer76}
\by В.~М.~Маслов, И.~П.~Боровинская, А.~Г.~Мержанов
\paper К вопросу о механизме безгазового горения
\jour Физика горения и взрыва
\yr 1976
\vol 12
\issue 5
\pages 703--709
\mathnet{http://mi.mathnet.ru/fgv5955}
\transl
\jour Combustion, Explosion and Shock Waves
\yr 1976
\vol 12
\issue 5
\pages 631--636
\crossref{https://doi.org/10.1007/BF00743167}
Образцы ссылок на эту страницу:
https://www.mathnet.ru/rus/fgv5955
https://www.mathnet.ru/rus/fgv/v12/i5/p703
Эта публикация цитируется в следующих 55 статьяx:
Aleksey Matveev, Vladimir Promakhov, “SHS processes, structure and phase composition of hybrid compositional materials produced from (Al-Tiad)–(Ti-2B) system powder at different Tiad content”, Ceramics International, 2025
А. Matveev, V. Promakhov, N. Schulz, V. Bakhmat, I. Belchikov, “Structure and phase composition of SHS composites based on Al–Ti–B system with different Al content”, Ceramics International, 50:1 (2024), 503
Aleksey Matveev, Vladimir Promakhov, Nikita Schulz, Vladislav Bakhmat, Timur Turanov, “Nano- and Submicron-Sized TiB2 Particles in Al–TiB2 Composite Produced in Semi-Industrial Self-Propagating High-Temperature Synthesis Conditions”, Metals, 14:5 (2024), 511
Д.А. Ткачев, И.А. Жуков, И.А. Бельчиков, Я.А. Дубкова, Р. Мубараков, “SELF-PROPROPAGING HIGH-TEMPERATURE SYNTHESIS of almgb14 ceramic”, Южно-Сибирский научный вестник, 2024, № 2(54), 148
Aleksey E. Matveev, “The effect of the concentration of plastic waste on the formation of reaction products of the Ti–PET system”, Green Chemical Engineering, 5:3 (2024), 374
Aleksey E. Matveev, “Energy-efficient scientific-technological approaches to the processing of plastic waste PET, PE, PP, PS to produce hydrogen-containing gas and titanium carbide powder”, Materials Today Sustainability, 27 (2024), 100802
Yurii A. Chumakov, Anna G. Knyazeva, “EFFECT OF THE RATIO OF COMPONENTS IN Ti-Al-C-Fe2O3 SYSTEM ON THE EVOLUTION OF THE SYNTHESIS PRODUCT COMPOSITION IN COMBUSTION MODE”, High Temp Mat Proc, 27:1 (2023), 1
Alexey Matveev, Vladimir Promakhov, Nikita Schulz, Vladislav Bakhmat, Artem Babaev, Alexander Vorozhtsov, “Study of the Phase Composition, Structure and Mechanical Properties of Synthetic Composites Produced by High-Temperature Vacuum Sintering of SHS-Fabricated CrNi-TiN Powders”, Metals, 13:5 (2023), 846
A.E. Matveev, P. Yu. Nikitin, I.A. Zhukov, A.S. Zhukov, “The use of plastic waste as carbon raw materials to obtain TiC-based powders”, Ceramics International, 47:15 (2021), 21140
Alexey Matveev, Ilya Zhukov, Mansur Ziatdinov, Alexander Zhukov, “Planetary Milling and Self-Propagating High-Temperature Synthesis of Al-TiB2 Composites”, Materials, 13:5 (2020), 1050
P.Yu. Nikitin, I.A. Zhukov, A.E. Matveev, S.D. Sokolov, M.S. Boldin, A.B. Vorozhtsov, “AlMgB14–TiB2 composite materials obtained by self-propagating high-temperature synthesis and spark plasma sintering”, Ceramics International, 46:14 (2020), 22733
Yuri Yasenchuk, Ekaterina Marchenko, Victor Gunther, Andrey Radkevich, Oleg Kokorev, Sergey Gunther, Gulsharat Baigonakova, Valentina Hodorenko, Timofey Chekalkin, Ji-hoon Kang, Sabine Weiss, Aleksei Obrosov, “Biocompatibility and Clinical Application of Porous TiNi Alloys Made by Self-Propagating High-Temperature Synthesis (SHS)”, Materials, 12:15 (2019), 2405
Dmitry Gromov, Alexey Sherchenkov, Egor Lebedev, Alexey Babich, Svetlana Nemtseva, Yury Shaman, Tomasz Maniecki, Waldemar Maniukiewicz, Pawel Mierczynski, Radoslaw Ciesielski, Sergey Gavrilov, “The influence of compression conditions on the peculiarities of self-propagating exothermal reaction in Al–Ni powder reactive materials”, J Therm Anal Calorim, 134:1 (2018), 35
B. Aaron Mason, Travis R. Sippel, Lori J. Groven, I. Emre Gunduz, Steven F. Son, “Combustion of mechanically activated Ni/Al reactive composites with microstructural refinement tailored using two-step milling”, Intermetallics, 66 (2015), 88
Atsushi Makino, D. Ichikawa, A. Matsumoto, T. Kanda, T. Watanabe, “Spontaneous ignition temperature for the compacted mixture of Ni–Al system: Experiment, theory, and comparisons”, Proceedings of the Combustion Institute, 34:2 (2013), 2197
B. A. Mason, L. J. Groven, S. F. Son, “The role of microstructure refinement on the impact ignition and combustion behavior of mechanically activated Ni/Al reactive composites”, Journal of Applied Physics, 114:11 (2013), 113501
Makoto Kobashi, Yoshinori Kamiya, Naoyuki Kanetake, “Effect of heat absorbing powder addition on cell morphology of porous titanium composite manufactured by reactive precursor method”, Materials Science and Engineering: A, 556 (2012), 388
Roberto Rosa, Paolo Veronesi, Marco Michelazzi, Cristina Leonelli, Aldo R. Boccaccini, “Combination of electrophoretic deposition and microwave-ignited combustion synthesis for the preparation of ceramic coated intermetallic-based materials”, Surface and Coatings Technology, 206:14 (2012), 3240
Alexander Shteinberg, “Thermal analysis of high-temperature fast reactions in energetic materials”, J Therm Anal Calorim, 106:1 (2011), 39
Silvia Gennari, Umberto Anselmi-Tamburini, Filippo Maglia, Giorgio Spinolo, “Modeling the ignition of self-propagating combustion synthesis of transition metal aluminides”, Intermetallics, 18:12 (2010), 2385