Abstract:
Powders of various metals and boron are widely used in mixed fuel compositions to increase the combustion temperature and specific impulse of rocket engines. The article presents the results of an experimental study of the oxidation and ignition in air of ultrafine aluminum powders AlexAlex, amorphous boron and microsized aluminum powders μAlμAl, aluminum borides AlB2AlB2 and AlB12AlB12. Metal and boron powders were heated and ignited by a cw CO2CO2 laser in the heat flux density range 6565–190190 W/cm22. Based on thermal analysis data, it was found that the powder reactivity parameters are arranged in the following sequence (in descending order of activity): Alex→B→AlB12→AlB2→μAlAlex→B→AlB12→AlB2→μAl. During the oxidation of amorphous boron and aluminum dodecaboride AlB12AlB12, the total specific heat release and the rate of mass change have maximum values. AlexAlex, boron and AlB12AlB12 powders ignite more easily in air under the action of an external radiant source. Power exponent nn as a function of the ignition delay time tigntign on the heat flux density tign(q)=Aq−ntign(q)=Aq−n for μAlμAl powders, AlB2AlB2 and AlB12AlB12 are approximately the same and equal to ≈2.0≈2.0, for ultrafine AlexAlex and boron powders it is lower and amounts to n=1.5n=1.5 and 1.01.0, respectively.
Citation:
A. G. Korotkikh, I. V. Sorokin, V. A. Arkhipov, “Laser ignition of aluminum and boron based powder systems”, Fizika Goreniya i Vzryva, 58:4 (2022), 32–40; Combustion, Explosion and Shock Waves, 58:4 (2022), 422–429
\Bibitem{KorSorArk22}
\by A.~G.~Korotkikh, I.~V.~Sorokin, V.~A.~Arkhipov
\paper Laser ignition of aluminum and boron based powder systems
\jour Fizika Goreniya i Vzryva
\yr 2022
\vol 58
\issue 4
\pages 32--40
\mathnet{http://mi.mathnet.ru/fgv859}
\crossref{https://doi.org/10.15372/FGV20220404}
\elib{https://elibrary.ru/item.asp?id=49342099}
\transl
\jour Combustion, Explosion and Shock Waves
\yr 2022
\vol 58
\issue 4
\pages 422--429
\crossref{https://doi.org/10.1134/S0010508222040049}
Linking options:
https://www.mathnet.ru/eng/fgv859
https://www.mathnet.ru/eng/fgv/v58/i4/p32
This publication is cited in the following 6 articles:
Alexander G. Korotkikh, Daniil V. Teplov, Ivan V. Sorokin, “Combustion features of dispersed aluminum and boron in high-energy composition”, FirePhysChem, 2024
V. G. Shevchenko, V. N. Krasil'nikov, D. A. Eselevich, A. V. Konyukova, O. G. Reznitskikh, “Oxidation of boron modified with vanadium pentoxide”, Combustion, Explosion and Shock Waves, 60:5 (2024), 617–623
I. V. Sorokin, A. G. Korotkikh, “Effect of ultrafine powders Al/B, Ti/B, and Fe/B on the ignition and combustion characteristics of a high-energy material”, Combustion, Explosion and Shock Waves, 59:6 (2023), 716–723
R{\i}dvan Küçükosman, Hüseyin Değirmenci, Ahmet Alper Yontar, Kasim Ocakoglu, “Combustion characteristics of gasoline fuel droplets containing boron-based particles”, Combustion and Flame, 255 (2023), 112887
A. G. Korotkikh, I. V. Sorokin, D. V. Teplov, V. A. Arkhipov, “Combustion characteristics of a high-energy material containing particulate aluminum, boron, and aluminum borides”, Combustion, Explosion and Shock Waves, 59:4 (2023), 440–446
A. G. Korotkikh, I. V. Sorokin, V. A. Arkhipov, “Effect of ammonium nitrate and combustible binder on the ignition characteristics of high-energetic materials containing aluminum borides”, Combustion, Explosion and Shock Waves, 58:5 (2022), 593–601