The effect of stoichiometry on the combustion behavior of a nanoscale Al/MoO3 thermite

被引:72
作者
Dutro, G. M. [1 ]
Yetter, R. A. [2 ]
Risha, G. A. [3 ]
Son, S. F. [1 ]
机构
[1] Purdue Univ, Zucrow Labs, W Lafayette, IN 47906 USA
[2] Penn State Univ, University Pk, PA 16802 USA
[3] Penn State Univ, Altoona Coll, PA USA
关键词
Nanoscale energetic materials; Thermite; Combustion mode; IGNITION; WAVE;
D O I
10.1016/j.proci.2008.07.028
中图分类号
O414.1 [热力学];
学科分类号
摘要
The effect of stoichiometry on the combustion behavior of the nanoscale aluminum molybdenum trioxide (nAl/MoO(3)) thermite was Studied in a burn tube experiment by characterizing the propagation velocity and pressure output of the reaction. Changing the stoichiometry affects the combustion through changes in the product temperature, phase, and composition. The mixture ratios of the composites were varied over an extremely wide range (5% nAl (95% MoO(3))-09% nAl (10% MoO(3))). Results revealed three separate combustion regimes: a steady high speed propagation (similar to 100 to similar to 1000 m/s) from approximately 10%,, to 65% nAl, an oscillating and accelerating wave near 70% nAl, and a steady-slow speed propagation (similar to 0.1-1 m/s) from approximately 75% to 85% nAl. Propagation was observed to fail both <10% nAl and >85% nAl. This is the first known observation of such limits for a nanoscale thermite in a tube geometry. The instrumented tube tests revealed peak pressures over 8 MPa near stoichiometric conditions in the steady high speed propagation region, no measurable Pressure rise at low speed propagation, and building pressures for accelerating waves. The results Suggest the propagation mode to be a Supersonic convective wave for near stoichiometric mixtures and a conductive deflagration for extremely fuel-rich mixtures. The implications of these results for microscale combustion applications are discussed. (C) 2009 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:1921 / 1928
页数:8
相关论文
共 38 条
[21]   Experimental and modeling investigation on the self-propagating combustion behavior of Al-MoO3 reactive multilayer films [J].
Tai, Yu ;
Xu, Jianbing ;
Wang, Fei ;
Dai, Ji ;
Zhang, Wei ;
Ye, Yinghua ;
Shen, Ruiqi .
JOURNAL OF APPLIED PHYSICS, 2018, 123 (23)
[22]   Electrospray Nested Energetic Cells from Nanothermite with MoO3 Nanostrips: Reactivity, Sensitivity and Combustion Performance [J].
Li, Yaru ;
Ren, Hui ;
Xie, Quanmin .
APPLIED SCIENCES-BASEL, 2024, 14 (13)
[23]   Effects of oxidizer structure on thermal and combustion behavior of Fe2O3/Zr thermite [J].
Li, Chunhong ;
Kang, Xiaoli .
MATERIALS RESEARCH EXPRESS, 2021, 8 (10)
[24]   RADIAL COMBUSTION DYNAMICS IN Fe2O3/Al THERMITE: VARIABILITY OF THE FLAME PROPAGATION PROFILES [J].
Duraes, L. ;
Plaksin, I. ;
Antunes, J. ;
Campos, J. ;
Portugal, A. .
SHOCK COMPRESSION OF CONDENSED MATTER - 2009, PTS 1 AND 2, 2009, 1195 :428-+
[25]   Nanoenergetics as pressure generator for nontoxic impact primers: Comparison of Al/Bi2O3, Al/CuO, Al/MoO3 nanothermites and Al/PTFE [J].
Glavier, Ludovic ;
Taton, Guillaume ;
Ducere, Jean-Marie ;
Baijot, Vincent ;
Pinon, Stephane ;
Calais, Theo ;
Esteve, Alain ;
Rouhani, Mehdi Djafari ;
Rossi, Carole .
COMBUSTION AND FLAME, 2015, 162 (05) :1813-1820
[26]   Low-temperature exothermic reactions in fully-dense Al/MoO3 nanocomposite powders [J].
Williams, Rayon A. ;
Schoenitz, Mirko ;
Ermoline, Alexandre ;
Dreizin, Edward L. .
THERMOCHIMICA ACTA, 2014, 594 :1-10
[27]   Divide and Combust: Effect of Morphology of CuO Nanowires on the Combustion Rate of Al Nanoparticle-CuO Nanowire Thermite Composites [J].
Lee, Kyuhyeon ;
Kim, Dahin ;
Shin, Do Joong ;
Park, Jinsu ;
Park, Jisu ;
Lee, Kangha ;
Yoo, Jichang ;
Kim, Whi Dong ;
Lee, Doh C. .
SCIENCE OF ADVANCED MATERIALS, 2016, 8 (01) :185-189
[28]   Thermal behavior of Fe2O3/Al thermite mixtures in air and vacuum environments [J].
Duraes, L. ;
Santos, R. ;
Correia, A. ;
Campos, J. ;
Portugal, A. .
Shock Compression of Condensed Matter - 2005, Pts 1 and 2, 2006, 845 :956-959
[29]   The effect of Si-Bi2O3 on the ignition of the Al-CuO thermite [J].
Ilunga, K. ;
del Fabbro, O. ;
Yapi, L. ;
Focke, W. W. .
POWDER TECHNOLOGY, 2011, 205 (1-3) :97-102
[30]   Integration of nano-Al with one-step synthesis of MoO3 nanobelts to realize high exothermic nanothermite [J].
Hu, Xiuli ;
Xiao, Leqin ;
Jian, Xiaoxia ;
Zhou, Weiliang .
SCIENCE AND ENGINEERING OF COMPOSITE MATERIALS, 2018, 25 (03) :579-585