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Study on Indium (III) Oxide/Aluminum Thermite Energetic Composites

期刊

JOURNAL OF COMPOSITES SCIENCE
卷 5, 期 7, 页码 -

出版社

MDPI
DOI: 10.3390/jcs5070166

关键词

nanothermites; In2O3; mechanical sensitivities; electrostatic discharge; combustion speed

资金

  1. French National Centre for Scientific Research (CNRS)
  2. French German Research Institute of Saint-Louis (ISL, Saint-Louis, France)
  3. University of Strasbourg (UNISTRA, Strasbourg, France)

向作者/读者索取更多资源

The study focused on the use of indium (III) oxide nanoparticles as oxidizer in the preparation of nanothermites and evaluated their performance characteristics and combustion velocity, as well as spark sensitivity. Experimental results showed that the Al/In2O3 nanothermite was insensitive to impact and friction stimuli, but extremely sensitive to spark.
Thermites or composite energetic materials are mixtures made of fuel and oxidizer particles at micron-scale. Thermite reactions are characterized by high adiabatic flame temperatures (>1000 degrees C) and high heats of reaction (>kJ/cm(3)), sometimes combined with gas generation. These properties strongly depend on the chemical nature of the couple of components implemented. The present work focuses on the use of indium (III) oxide nanoparticles as oxidizer in the elaboration of nanothermites. Mixed with an aluminum nanopowder, heat of reaction of the resulting Al/In2O3 energetic nanocomposite was calculated and its reactive performance (sensitivity thresholds regarding different stimuli (impact, friction, and electrostatic discharge) and combustion velocity examined. The Al/In2O3 nanothermite, whose heat of reaction was determined of about 11.75 kJ/cm(3), was defined as insensitive and moderately sensitive to impact and friction stimuli and extreme sensitive to spark with values >100 N, 324 N, and 0.31 mJ, respectively. The spark sensitivity was decreased by increasing In2O3 oxidizer (27.71 mJ). The combustion speed in confined geometries experiments was established near 500 m/s. The nature of the oxidizer implemented herein within a thermite formulation is reported for the first time.

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