4.6 Article

Dependence of catalytic properties of Al/Fe2O3 thermites on morphology of Fe2O3 particles in combustion reactions

Journal

JOURNAL OF SOLID STATE CHEMISTRY
Volume 219, Issue -, Pages 67-73

Publisher

ACADEMIC PRESS INC ELSEVIER SCIENCE
DOI: 10.1016/j.jssc.2014.06.039

Keywords

Al/Fe2O3; Morphology; Combustion property

Funding

  1. Program for the National Natural Science Foundation of China [21073141, 21373161]
  2. New Century Excellent Talents in University of Ministry of Education of the People's Republic of China [NCET-12-1047]
  3. Research Fund for the Doctoral Program of Higher Education of China (RFDP) [20126101110009]
  4. Science and Technology Foundation of Science and Technology on Combustion and Explosion Laboratory, China [9140C3501041001]
  5. Opening Foundation of State Key Laboratory of Continental Dynamics (Northwest University) [12LC D07]

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Three Fe2O3 particle samples with the same crystal structure but different morphologies were prepared by the hydrothermal method and then combined with Al nanoparticles to produce Al/Fe2O3 thermites using ultrasonic mixing. The properties of Fe2O3 and Al/Fe2O3 were studied using a combination of experimental techniques including scanning electron microscopy (SEM), energy dispersive spectrometer (EDS), X-ray diffraction (XRD), Fourier transform infrared spectroscopy (FTIR), and differential scanning calorimetry (DSC). The influences of the three Al/Fe2O3 thermites on the combustion properties of the AP/HTPB (ammonium perchlorate/hydroxyl-terminated polybutadiene) composite propellant were investigated in comparison to those of Fe2O3. The results show that the Al/Fe2O3 thermites are better than Fe2O3 in enhancing the combustion performance of AP/HTPB. Furthermore, the surface area, which depends on size and mophology, of Fe2O3 particles was found to play a vital role in improving the burning rate of the thermites-containing propellant formulation, with the smallest particles with the largest surface-to-volume (S/V) ratio performing the best. The enhanced catalytic property of the granular-shape Fe2O3 and the corresponding thermite is attributed to the large specific surface area of Fe2O3. The different thermal behaviors of these three superthemites were supposed to be attributed to the surface site of Fe2O3 particles. This work provides a better understanding on the catalytic properties of thermites that are important for combustion applications. (C) 2014 Elsevier Inc. All rights reserved.

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