4.4 Article

Enhanced Convective Heat Transfer in Nongas Generating Nanoparticle Thermites

Journal

Publisher

ASME
DOI: 10.1115/1.4001933

Keywords

nanocomposites; enhanced convection; reaction mechanisms; nano-aluminum; thermites; CuO; NiO; peak pressures; flame speeds; DSC; TGA; XRD; gas generation; flame propagation

Funding

  1. Army Research Office [W911NF-04-1-0217]
  2. U.S. Department of Energy by Lawrence Livermore National Laboratory [DE-AC52-07NA27344]

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Flame propagation and peak pressure measurements were taken of two nanoscaled thermites using aluminum (Al) fuel and copper oxide (CuO) or nickel oxide (NiO) oxidizers in a confined flame tube apparatus. Thermal equilibrium simulations predict that. the Al + CuO reaction exhibits high gas generation and, thus, high convective flame propagation rates while the Al + NiO reaction produces little to no gas and, therefore, should exhibit much lower flame propagation rates. Results show flame propagation rates ranged between 200 m/s and 600 m/s and peak pressures ranged between 1.7 MPa and 3.7 MPa for both composites. These results were significantly higher than expected for the Al + NiO, which generates virtually no gas. For nanometric Al particles, oxidation has recently been described by a melt-dispersion oxidation mechanism that involves a dispersion of high velocity alumina shell fragments and molten Al droplets that promote a pressure build-up by inducing a bulk movement of fluid. This mechanism unique to nanoparticle reaction may promote convection without the need for additional gas generation. [DOT: 10.1115/1.4001933]

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