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The review presents the characteristics of the properties of explosive mixtures containing water as one of the basic components. The analytical work was conducted on AN/water binary mixtures, ANFO, watergel and emulsion explosives. Work conducted on a hydrogen peroxide-based watergel explosive was also included. The most frequently described parameters were the explosive transformation capacity, detonation velocity, and content of toxic components in the explosion products.
Rocznik
Tom
Strony
26--45
Opis fizyczny
Bibliogr. 48 poz., tab., wykr.
Twórcy
autor
- Łukasiewicz Research Network – Institute of Industrial Organic Chemistry, 6 Annopol Street, 03-236 Warsaw, Poland
autor
- Łukasiewicz Research Network – Institute of Industrial Organic Chemistry, 6 Annopol Street, 03-236 Warsaw, Poland
autor
- Institute of Safety Engineering, Fire University, 01-629 Warsaw, Poland
Bibliografia
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- [3] Wang, X. Emulsions Explosives. Beijing: Metallurgical Industry Press, 1994; ISBN 7-5024-1574-2.
- [4] Maranda, A.; Paszula, J.; Zawadzka-Małota, I.; Kuczyńska, B.; Witkowski, W.; Nikolczuk, K.; Wilk, Z. Aluminum Powder Influence on ANFO Detonation Parameters. Cent. Eur. J. Energ. Mater. 2011, 8(4): 279-292.
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- [6] Biessikirski, A.; Ziąbka, M.; Dworzak, M.; Kuterasiński, Ł.; Twardosz, M. Efffect of Metal Addition on ANFO’s Morphology and Energy Detonation. (in Polish) Przem. Chem. 2019, 98(6): 928-931; http://dx.doi.org/10.15199/62.2019.6.13.
- [7] Araos, M.; Onederra, I. Preliminary Detonation Study of Dry, Wet and Aluminized ANFO Using High-Speed Video. Cent. Eur. J. Energ. Mater. 2019, 16(2): 228-244; http://dx.doi.org/10.22211/cejem/109808.
- [8] Dobrilović, M.; Škrlec, V.; Bohanek, V. Velocity of Detonation of Low Density ANFO Mixture. Proc. 16th Sem. New Trends Res. Energ. Mater. Pardubice, Czech Republic, 2013, Part II, pp. 543-554; ISBN 978-80-7395-605-9.
- [9] Dobrilović, M.; Bohanek, V.; Žganec, S. Influence of Explosive Charge Temperature on the Velocity of Detonation of ANFO Explosives. Cent. Eur. J. Energ. Mater. 2014, 11(2): 191-197.
- [10] Žganec, S.; Bohanek, V.; Dobrilović, M. Influence of Primer on the Velocity Detonation of ANFO and Heavy ANFO Blends. Cent. Eur. J. Energ. Mater. 2016, 13(3): 695-705.
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- [12] Biessikirski, A.; Kuterasiński, Ł. Investigation of the Structural and Morphological Properties of Explosives Obtained by Adding Alcohols to Ammonium Nitrate. (in Polish) Przem. Chem. 2018, 97(10): 1718-1721; http://dx.doi.org/10.15199/62.2018.10.17.
- [13] Biessikirski, A. Analysis of the Morphological Properties of ANFO Explosives Produced on the Basis of Various Types of Ammonium Nitrate(V) and their Mixtures. (in Polish) Przem. Chem. 2018, 97(10): 1689-1692; https://dx.doi.org/10.15199/62.2018.10.11.
- [14] Biessikirski, A.; Kuterasiński, Ł.; Pyra, J.; Dworzak, M. Comparison of the Properties of Ammonium Nitrate Used in Mineral Fertilizers and the Production of Explosives. (in Polish) Przem. Chem. 2016, 95(7): 1381-1384; http://dx.doi.org/10.15199/62.2016.7.20.
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- [17] Bhandari, S. Enginireeng Rock Blasting Operation. Rotterdam: AA. Balkema-Brookfield, 1997; ISBN 90-5410-658.
- [18] Zygmunt, B.; Buczkowski, D.; Maranda, A. Third Generation Explosives. (in Polish) Warsaw: Military University of Technology, 2007; ISBN 978-83-89399-62-5.
- [19] Biessikirski, A.; Pytlik, M.; Dworzak, M.; Twardosz, M.; Wądrzyk, M.; Janus, R. Influence of the Moisture on Fumes Derived from the ANFO Detonation. J. Sustain. Min. 2024, 23(4): 350-356; https://doi.org/10.46873/2300-3960.1427.
- [20] Cook, M.A.; Farnam, Jr. H.E. Explosive Composition. Patent US 2930685, 1960.
- [21] Cook, M.A. Explosives – a Survey of Technical Advances. Ind. Eng. Chem. 1968, 60(7): 44-55.
- [22] Vetluzhskikh, V.P.; Danchev, P.S.; Mishutkin, V.V.; Pavletsova, M.A. Study of the Detonation Ability of Water-Filled Explosives Based on Hot Solutions of Oxidizers. (in Russian) Vzryvnoe Delo 1974, 74/31: 28-33.
- [23] Yoffe, V.B.; Menshikov, B.A. On the Detonation Ability of Water-Filled Explosives. (in Russian) Vzryvnoe Delo 1975, 75/32: 141-151.
- [24] Maciejewski, M.; Maranda, A.; Nowaczewski, J.; Włodarczyk, E.; Zygmunt, B. On a New Type Explosive “WATEX”. (in Polish) Biul. WAT 1976, 25(12): 117-128.
- [25] Zygmunt, B.; Włodarczyk, E.; Maranda, A.; Nowaczewski, J.; Postek, M. Detonation Behavior of Explosives of Suspension-Type Explosives with Various Textures. Combust. Explos. Shock Waves 1982, 18(3): 363-366; https://doi.org/10.1007/BF00783053.
- [26] Maranda, A.; Nowaczewski, J.; Włodarczyk, E.; Zygmunt, B. Study on Detonation Properties of Slurry Explosives by Electromagnetic Method. J. Tech. Phys. 1979, 20(1): 19-29.
- [27] Maranda, A.; Nowaczewski, J.; Włodarczyk, E.; Zygmunt, B. On some Detonation Properties of Slurry Explosives Sensitized with Aluminum Dust. (in Polish) Biul. WAT 1978, 25(5): 11-20.
- [28] Maranda, A. The Role of Water in Detonation of Aluminium Sensitized Slurry. Propellants Explos. Pyrotech. 1991, 16(5): 232-234; https://doi.org/10.1002/prep.19910160506.
- [29] Maranda, A. Study of Detonation of Aluminium Explosives Containing Organic Fuels. Propellants Explos. Pyrotech. 1991, 16(6): 266-272; https://doi.org/10.1002/prep.19910160603.
- [30] Bluhm, H.F. Ammonium Nitrate Emulsion Blasting and Method of Preparating. Patent US 3447978, 1969.
- [31] Zhou, H.S.; Xie, X.H.; Xu, K. Stability Test of Emulsion Matric in the Emulsifier. Adv. Mat. Res. 2015, 1082: 26-29; https://doi.10.4028/www.scientific.net.AMR.1082.26.
- [32] Wang, F.; Ma, H.; Shen, Z. Explosion Performance of High-temperature Degraded Emulsion Explosives. Propellants Explos. Pyrotech. 2017, 42(11): 1325-1332; https://doi.10.1002/prep.201700052.
- [33] Cheng, Y.; Wang, Q.; Liu, F.; Ma, H.; Shen, Z.; Guo, Z.; Liu, R. The Effect of the Energetic Additive Coated MgH2 on the Power of Emulsion Explosives Sensitized by Glass Microballoons. Cent. Eur. J. Energ. Mater. 2016, 13(3): 349-356; https://doi.org/10.22211/cejem/65019.
- [34] Wang, Y.; Ma, H.; Shen, Z.; Wang, B.; Xue, B.; Ren, L. Detonation Characteristic of Emulsion Explosives Sensitized by Hydrogen-storage Glass Microballoons. Propellants Explos. Pyrotech. 2018, 43(9): 939-947; https://doi.org/10.1002/prep.201700045.
- [35] Yuonoshev, A.S.; Bordzilovskii, S.A.; Voronin, M.S.; Karakhanov, S.M.; Makarov, S.N.; Plastinin, A.V. Detonation Pressure of an Emulsion Explosive Sensitized by Polymer Microballoons. Combust. Explos. Shock Waves 2019, 55(4): 426-433; https://doi.10.1134/S0010508219040087.
- [36] Allum, J.M.; Cartwight, M.; Cooper, J. Variation of Emulsion Explosive Performance Parameters with Water Content. Proc. 28th Int. Annu. Conf. ICT, Karlsruhe, Germany, 1997, pp. 34.1-14.
- [37] Price, D. Contrasting Patterns in the Behaviour of High Explosives. Symp. (Int.) Comb. 1967, 11(1): 693-7002; https://doi.org/10.1016/S0082-0784(67)80195-4.
- [38] Maranda, A.; Gołąbek, B.; Kasperski, J. Emulsion Explosives. (in Polish) Warsaw: Publ. Scientific and Technical, 2008; ISBN 978-83-89399-62-5.
- [39] Turcotte, R.; Badean, Ch.M.; Goldthorp, S. Minimum Burning Pressures of Water-Based Emulsion Explosives. JoVE 2017, 128 paper e-56167; https://doi.org/10.3791/56167.
- [40] Historical Survey of Hydrogen Peroxide/Alcohol Explosives. Report SAND2015-0133R, US Department of Energy’s National Security Administration, Albuquerque, US-NM, 2015; https://doi.org/10.2172/1177376.
- [41] Shanley, E.S.; Greenspan, F.P. Highly Concentrated Hydrogen Peroxide. Ind. Eng. Chem. 1947, 39(12): 1536-1543.
- [42] Shanley, E.S.; Kauffmann, H.O. Peroxide-Glycerol Explosive. Patent US 2452074, 1948.
- [43] Baker, A.W.; Groves, S.W. Hydrogen Peroxide Explosives. Patent US 3047441, 1962.
- [44] Bouillet, E.; Colery, J.C.; Declerck, C.; Ledoux, P. Process for the Manufacture of Explosive Cartridges, and Explosives Cartridges Obtained Using the Said Process. Patent US 4942800, 1990.
- [45] Schreck, A.; Knorr, A.; Wehrstedt, K.D.; Wandrey, P.A.; Gmeinwieser, T.; Steinbach, J. Investigation of the Explosive Hazard of Mixtures Containing Hydrogen Peroxide and Different Alcohols. J. Hazard. Mater. 2004, 108(1-2): 1-7; https://doi:10.1016/j.jhazmat.2004.01.003.
- [46] Araos, M.; Onederra, I. Development of Novel Mining Explosive Formulation to Eliminate Nitrogen Oxide Fumes. Mining Tech. 2015, 124(1): 16-23; https://doi.org/10.1179/1743286314Y.0000000074.
- [47] Araos, M.; Onederra, I. Development of Ammonium Nitrate-free Mining Explosives. 43rd Annu. Conf. Explosives and Blasting Techniques, Orlando, US-FL, 2017; https://espace.library.uq.edu.au/view/UQ:436338.
- [48] Araos, M.; Onederra, I. Detonation Characteristics of a NOx-Free Mining Explosive Based on Sensitised Mixtures of Low Concentration Hydrogen Peroxide and Fuel. Cent. Eur. J. Energ. Mater. 2017, 14(4): 759-774; https://doi.org/10.22211/cejem/70835.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-4e64d18b-d8f1-4639-995b-90d1860abb3d
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