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Original Articles

Validation of the Thermal Oxidation Model for Al/CuO Nanocomposite Powder

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Pages 47-67 | Received 01 Mar 2013, Accepted 16 Sep 2013, Published online: 10 Oct 2013

REFERENCES

  • Apperson , S. , Bhattacharya , S. , Gao , Y. , Senthil , S. , Hasan , S. , Hossain , M. , Shende , R. , Redner , P. , Kapoor , D. , Nicolich , S. , Gangopadhyay , K. , and Gangopadhyay , S. 2005 . On-chip initiation and burn rate measurements of thermite energetic reactions . MRS Online Proceedings Library , 896 , 81 – 86 .
  • Apperson , S. , Shende , R.V. , Subramanian , S. , Tappmeyer , D. , Gangopadhyay , S. , Chen , Z. , Gangopadhyay , K. , Redner , P. , Nicholich , S. , and Kapoor , D. 2007 . Generation of fast propagating combustion and shock waves with copper oxide/aluminum nanothermite composites . Appl. Phys. Lett. , 91 , 243109-1 – 243109-3 .
  • Asay , B.W. , Busse , J.R. , Jorgensen , B.S. , Bockmon , B. , Pantoya , M. , and Son , S.F. 2001 . Reaction propagation physics of Al/MoO3 nanocomposite thermites . In Proceedings of the 28th International Pyrotechnics Society Seminar , Adelaide, South Australia, Australia; International Pyrotechnics Society, Littleton, CO , pp. 833 – 842 .
  • Barbee , J. , and Weihs , T. 1996 . Ignitable heterogeneous stratified structure for the propagation of an internal exothermic chemical reaction along an expanding wavefront and method of making same. US Patent 5,538,795.
  • Bockmon , B.S. , Pantoya , M.L. , Son , S.F. , Asay , B.W. , and Mang , J.T. 2005 . Combustion velocities and propagation mechanisms of metastable interstitial composites . J. Appl. Phys. , 98 , 064903 – 064907 .
  • Chase , M.W. , Jr. 1998 . NIST-JANAF Themochemical Tables, 4th ed. J. Phys. Chem. Ref. Data, Monograph, 9, 1–1951. American Chemical Society (ACS) and American Institute of Physics (AIP) for the National Institute of Standards and Technology (NIST), Washington, DC .
  • Dreizin , E.L. 2009 . Metal-based reactive nanomaterials . Prog. Energy Combust. Sci. , 35 , 141 – 167 .
  • Dreizin , E.L. , and Schoenitz , M. 2009 . Nano-composite energetic powders prepared by arrested reactive milling. US Patent 7,524,355.
  • Dreizin , E.L. , Schoenitz , M. , Shoshin , Y.L. , Trunov , M.A. , Umbrajkar , S. , Ward , T.S. , and Zhu , X. 2005 . Highly-energetic nanocomposite powders produced by arrested reactive milling. In Energetic Materials Performance and Safety, 36th International Conference of ICT and 32nd International Pyrotechnics Seminar, DWS Werbeagentur und Verlag GmbH, Karsruhe, Germany, 138–1–138–12.
  • Duckham , A. , Spey , S.J. , Wang , J. , Reiss , M.E. , Weihs , T.P. , Besnoin , E. , and Knio , O.M. 2004 . Reactive nanostructured foil used as a heat source for joining titanium . J. Appl. Phys. , 96 , 2336 – 2342 .
  • Dupiano , P. , Stamatis , D. , and Dreizin , E.L. 2011. Hydrogen production by reacting water with mechanically milled composite aluminum-metal oxide powders. Int. J. Hydrogen Energy , 36, 4781–4791.
  • Ermoline , A. , and Dreizin , E.L. 2011 . Equations for the Cabrera–Mott kinetics of oxidation for spherical nanoparticles . Chem. Phys. Lett. , 505 , 47 – 50 .
  • Ermoline , A. , Schoenitz , M. , and Dreizin , E.L. 2011 . Reactions leading to ignition in fully dense nanocomposite Al-oxide systems . Combust. Flame , 158 , 1076 – 1083 .
  • Ermoline , A. , Stamatis , D. , and Dreizin , E.L. 2012 . Low-temperature exothermic reactions in fully dense Al-CuO nanocomposite powders . Thermochim. Acta , 527 , 52 – 58 .
  • Fan , R.-H. , Lü , H.-L. , Sun , K.-N. , Wang , W.-X. , and Yi , X.-B. 2006 . Kinetics of thermite reaction in Al-Fe2O3 system . Thermochim. Acta , 440 , 129 – 131 .
  • Gangopadhyay , S.C. , Shende , R. , Subramanian , S. , Gangopadhyay , K. , and Hasan , S. 2007 . Ordered nanoenergetic composites and synthesis method. US Patent 7,927,437.
  • Gash , A.E. , Tillotson , T.M. , Satcher , J.H. , Poco , J.F. , Hrubesh , L.W. , and Simpson , R.L. 2001a . Use of epoxides in the sol–gel synthesis of porous iron(III) oxide monoliths from Fe(III) salts . Chem. Mater. , 13 , 999 – 1007 .
  • Gash , A.E. , Tillotson , T.M. , Satcher Jr , J.H. , Hrubesh , L.W. , and Simpson , R.L. 2001b . New sol–gel synthetic route to transition and main-group metal oxide aerogels using inorganic salt precursors . J. Non-Cryst. Solids , 285 , 22 – 28 .
  • Gogulya , M.F. , Makhov , M.N. , Brazhnikov , M.A. , Dolgoborodov , A.Y. , Arkhipov , V.I. , Zhigach , A.N. , Leipunskii , I.O. , and Kuskov , M.L. 2008 . Explosive characteristics of aluminized HMX-based nanocomposites . Combust. Explos. Shock Waves , 44 , 198 – 212 .
  • Henz , B.J. , Hawa , T. , and Zachariah , M.R. 2010 . On the role of built-in electric fields on the ignition of oxide coated nanoaluminum: Ion mobility versus Fickian diffusion . J. Appl. Phys. , 107 , 024901 – 024909 .
  • Kuo , K.K. , Risha , G.A. , Evans , B.J. , and Boyer , E. 2003 . Potential usage of energetic nano-sized powders for combustion and rocket propulsion . MRS Online Proceedings Library , 800 , AA1.1 . doi: 10.1557/PROC-800-AA1.1.
  • Levitas , V.I. , Asay , B.W. , Son , S.F. , and Pantoya , M. 2006 . Melt dispersion mechanism for fast reaction of nanothermites . Appl. Phys. Lett. , 89 , 071909-1 – 071909-3 .
  • Pantoya , M.L. , and Granier , J.J. 2005 . Combustion behavior of highly energetic thermites: Nano versus micron composites . Propellants Explos. Pyrotech. , 30 , 53 – 62 .
  • Plantier , K.B. , Pantoya , M.L. , and Gash , A.E. 2005 . Combustion wave speeds of nanocomposite Al/Fe2O3: The effects of Fe2O3 particle synthesis technique . Combust. Flame , 140 , 299 – 309 .
  • Schoenitz , M. , Umbrajkar , S. , and Dreizin , E.L. 2007 . Kinetic analysis of thermite reactions in Al-MoO3 nanocomposites. In Proceedings of the 42nd AIAA/ASME/SAE/ASEE Joint Propulsion Conference & Exhibit, July 11, 2006, Sacramento, CA; Vol. 23. Reston, VA, American Institute of Aeronautics and Astronautics.
  • Schoenitz , M. , Ward , T. , and Dreizin , E.L. 2003 . Preparation of energetic metastable nano-composite materials by arrested reactive milling . MRS Online Proceedings Library , 800 , AA2.6.1 – AA2.6.6 .
  • Schoenitz , M. , Ward , T.S. , and Dreizin , E.L. 2005 . Fully dense nano-composite energetic powders prepared by arrested reactive milling . Proc. Combust. Inst. , 30 , 2071 – 2078 .
  • Son , S.F. , Asay , B.W. , Foley , T.J. , Yetter , R.A. , Wu , M.H. , and Risha , G.A. 2007a . Combustion of nanoscale Al/MoO3 thermite in microchannels . J. Propul. Power , 23 , 715 – 721 .
  • Son , S.F. , Yetter , R. , and Yang , V. 2007b . Introduction: Nanoscale composite energetic materials . J. Propul. Power , 23 , 643 – 644 .
  • Stamatis , D. , Ermoline , A. , and Dreizin , E.L. 2012 . A multi-step reaction model for ignition of fully-dense Al-CuO nanocomposite powders . Combust. Theor. Model. , 16 , 1011 – 1028 .
  • Stamatis , D. , Jiang , Z. , Hoffmann , V.K. , Schoenitz , M. , and Dreizin , E.L. 2009. Fully dense, aluminum-rich Al-CuO nanocomposite powders for energetic formulations. Combust. Sci. Technol. , 181, 97–116.
  • Sun , J. , Pantoya , M.L. , and Simon , S.L. 2006 . Dependence of size and size distribution on reactivity of aluminum nanoparticles in reactions with oxygen and MoO3 . Thermochim. Acta , 444 , 117 – 127 .
  • Tillotson , T.M. , Gash , A.E. , Simpson , R.L. , Hrubesh , L.W. , Satcher Jr , J.H. , and Poco , J.F. 2001 . Nanostructured energetic materials using sol–gel methodologies . J. Non-Cryst. Solids , 285 , 338 – 345 .
  • Trunov , M.A. , Schoenitz , M. , and Dreizin , E.L. 2006 . Effect of polymorphic phase transformations in alumina layer on ignition of aluminium particles . Combust. Theor. Model. , 10 , 603 – 623 .
  • Umbrajkar , S.M. , Schoenitz , M. , and Dreizin , E.L. 2006 . Exothermic reactions in Al-CuO nanocomposites . Thermochim. Acta , 451 , 34 – 43 .
  • Umbrajkar , S.M. , Seshadri , S. , Schoenitz , M. , Hoffmann , V.K. , and Dreizin , E.L. 2008 . Aluminum-rich Al-MoO3 nanocomposite powders prepared by arrested reactive milling . J. Propul. Power , 24 , 192 – 198 .
  • Wang , L.L. , Munir , Z.A. , and Maximov , Y.M. 1993 . Thermite reactions: Their utilization in the synthesis and processing of materials . J. Mater. Sci. , 28 , 3693 – 3708 .
  • Williams , R.A. , Schoenitz , M. , Ermoline , A. , and Dreizin , E.L. 2012 . On gas release by thermally-initiated fully-dense 2Al · 3CuO nanocomposite powder . Int. J. Energetic Mater. Chem. Propul. , 11 , 275 – 292 .
  • Color versions of one or more of the figures in the article can be found online at www.tandfonline.com/gcst.

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