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Environmentally Friendly Energetic Materials for Initiation Devices

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Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The problems of synthesis, properties and applications of environmentally-friendly, primary explosives are discussed. Several prospective, lead-free primary explosives have been prepared and thoroughly studied during recent decades. However, the manufacture of modern, 'green' energetic materials on an industrial scale for practical applications in civil and military primers, is a task for the near future.
Słowa kluczowe
Rocznik
Strony
293--327
Opis fizyczny
Bibliogr. 60 poz.
Twórcy
  • State Institute of Technology (Technical University), Moskovsky pr. 26, Saint-Petersburg, 190013 Russia, Ilyushin@lti-gti.ru
Bibliografia
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  • [5] а) Huynh M.H.V., Hiskey M.A., Meyer T.J., Wetzler M., Green Primaries: Environmentally Friendly Energetic Complexes, Proc. National Academy of Science of the USA, 2006, 103(14), 5409-5412; b) Huynh M.H.V., Coburn M.D., Meyer T.J., Wetzler M., Green Primary Explosives: 5-Nitrotetrazolato-N2-Ferrate Hierarchies, Proc. National Academy of Science of the USA, 2006, 103(27), 10322-10327.
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  • [30] Smirnov A.V., Ilyushin M.A., Tselinsky I.V., Complex Ammine Cobalt (III) Dinitroguanidinates as Energetic Materials (in Russian), VIIth Scientific Vishnyakov’s Talks, Boksitigorsk Leningrad Region, April 3, 2004, 112-119.
  • [31] Smirnov A.V., Ilyushin M.A., Tselinsky I.V., Sudarikov A.M., Investigation of Thermal Destruction of Tetrazolate Ammine Cobalt (III) Complexes (in Russian), IXth Scientific Vishnyakov’s Talks, Boksitigorsk Leningrad Region – St. Petersburg, March 24, 2006, 1, 196-201.
  • [32] Astrat’yev A.A., Dashko D.V., Kuznetsov L.L., Synthesis and Some Properties of 1,2-Dinitroguanidine, Russ. J. Org. Chem., 2003, 39(4), 501-512.
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  • [34] Ilyushin M.A., Smirnov A.V., Kotomin A.A., Tselinsky I.V, Estimation of Density and Detonation Velocity of Tetrazole Co(III) Complexes, Hanneng Cailiao = Energetic Materials, 1994, 2(1), 16-20.
  • [35] Zhu S., Wu Y., Zhung W., Mu J., Evaluation of a New Primary Explosive: Nickel Hydrazine Nitrate (NHN) Complex, Propellants Explos. Pyrotech., 1997, 22, 317-320.
  • [36] a) Chhabra J.S., Talawar M.B., Makashir P.S., Astana S.N., Singh H., Synthesis, Characterization and Thermal Studies of (Ni/Co) Metal Salts of Hydrazine: Potential Initiatory Compounds, J. Hazard. Mater., 2003, A99, 225-239; b) Nair U.R., Astana S.N., Subhananda Rao A., Gandhe B.R., Advance in High Energy Materials, Defense Science Journal, 2010, 60(2), 137-151.
  • [37] Wojewódka A., Bełzowski J., Hydrazine Complexes of Transition Metals as Prospective Explosives, Chemik, 2011, 65(1), 24-27.
  • [38] Talavar M.B., Agraval A.P., Anniyappan et al., Primary Explosives: Electrostatic Discharge Initiation, Additive Effect and Its Relation to Thermal and Explosive Characteristics, J. Hazard. Mater., 2006, B137, 1074-1078.
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  • [40] Zhu S., Wang Z., Li Y., Zhang L., Ye Y., Performance of NHA and Its Application, Proc. 35th Intern. Pyrotechnics Seminar, Fort Collins, Colorado, USA. July 13-18, 2008, 201-206.
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  • [42] Ilyushin M.A., Tselinsky I.V., Zhilin A.Yu., Ugryumov I.A., Smirnov A.V., Kozlov A.S., Coordination Complexes as Inorganic Explosives for Initiation Systems, Hunneng Cailiao = Energetic Materials, 2004, 12(1), 15-19.
  • [43] Ilyushin M.A., Tselinsky I.V., Ugryumov I.A., Dolmatov V.Yu., Shugalei I.V., Study of Submicron Structured Energetic Coordination Metal Complexes for Laser Initiation Systems, Cent. Eur. J. Energ. Mater., 2005, 2(1), 21-33.
  • [44] Chernay A.V., Sobolev V.V., Chernay V.A., Ilyushin M.A., Bunchuk Yu.P., Chapter 11, Ignition of Explosives by Pulse Lasers (in Russian), Physics of Impulse Treatment of Materials (Sobolev V.V. Ed.), Dnepropetrovsk, Art-Press, 2003, pp. 267-314.
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  • [53] Fisgher D., Klapötke T.M., Piercey D.J., Stierstorfer J., Copper Salts of Halo Tetrazoles: Light-Ignitable Primary Explosives, J. Energ. Mater., 2012, 30, 40-54.
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Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BAT1-0043-0034
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