Review of methods to attenuate shock/blast waves
Tài liệu tham khảo
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Ben-Artzi, 2003
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Frolov, 1991, Shock wave attenuation in gas suspensions, Combustion Explosion and Shock Waves, 27, 124, 10.1007/BF00785372
Gelfand, 1975, Investigation of the special characteristics of the propagation and reflection of pressure waves in a porous medium, Journal of Applied Mechanics and Technical Physics, 16, 897, 10.1007/BF00852818
Gelfand, 1990
Igra, 1987, Blast waves in dusty gases, Proceedings of the Royal Society, London A, 414, 197, 10.1098/rspa.1987.0140
Igra, 1988, Dusty shock waves, Applied Mechanics Reviews, 41, 379, 10.1115/1.3151872
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Igra, 2001, Experimental and theoretical studies of shock wave propagation through double-bend ducts, Journal of Fluid Mechanics, 437, 255, 10.1017/S0022112001004098
Igra, 2002, Shock wave propagation into a dust–gas suspension inside a double-bend conduit, ASME Journal of Fluids Engineering, 124, 483, 10.1115/1.1466457
Jourdan G, Mariani C, Biamino L, Houas L, Massol A, Igra O. Attenuating shock waves by a sequence of barriers placed in a closed environment; an experimental investigation. In: Proceedings of the 27 international symposium on shock waves. St. Petersburg, Russia; July 2009.
Kitagawa K, Yamashita S, Takayama K, Yasuhara M. Attenuation properties of blast wave through porous layer. In: Hannemann K, Seiler F, editors. Proceedings of the 26 international symposium on shock waves. Goettingen, Germany; July 2007.
Kweon YH, Miyazato Y, Aoki T, Kim HD, Setoguchi T. Computational study of the shock wave propagating through a silencer. In: Jagadish G, Arunan E, Reddy KPJ, editors. Proceedings of the 25 international symposium on shock waves. Bangalore, India; July 2005.
Larsen, 1992, Aqueous foam mitigation of confined blast, International Journal of Mechanical Sciences, 34, 409, 10.1016/0020-7403(92)90008-5
Lind CA, Cybyk BZ, Boris JP. Attenuation of shocks: high Reynolds number porous flows. In: Ball GJ, Hillier R, Roberts GT, editors. Proceedings of the 22 international symposium on shock waves. London, UK; July 1999.
Mataradze E, Krauthammer T, Chikhradze N, Chagelishvili E. Influence of liquid phase concentration on shock wave attenuation in mist. In: Proceedings of the 21 international symposium on military aspects of blast and shocks. Jerusalem, Israel; October 2010. 〈www.ortra.com/mabs21〉.
Miura, 1983, On the passage of a shock wave through a dusty–gas layer, Proceedings of the Royal Society of London. Series A, 385, 85, 10.1098/rspa.1983.0005
Monti, 1970, Normal shock wave reflection on deformable walls, Mecccanica, 4, 285, 10.1007/BF02145653
Ohtomo, 2005, Attenuation of shock waves propagating over arrayed baffle plates, Shock Waves, 14, 379, 10.1007/s00193-005-0282-5
Raspet, 1983, The reduction of blast noise with aqueous foam, Journal of the Acoustical Society of America, 74, 1757, 10.1121/1.390260
Raspet, 1987, The reduction of blast overpressures from aqueous foam in a rigid confinement, Applied Acoustics, 22, 35, 10.1016/0003-682X(87)90014-4
Rogg, 1985, Shock-induced flow in regular arrays of cylinders and packed beds, Journal of Heat and Mass Transfer, 28, 2285, 10.1016/0017-9310(85)90047-X
Seitz, 2006, Effect of compressible foam properties on pressure amplification during shock wave impact, Shock Waves, 15, 177, 10.1007/s00193-006-0033-2
Shi, 2004, The interaction between shock waves and solid spheres arrays in a shock tube, Acta Mechanica Sinica, 20, 219, 10.1007/BF02486714
Sommerfeld, 1985, The unsteadiness of shock waves propagating through gas–particle mixtures, Experiments in Fluids, 3, 197, 10.1007/BF00265101
Walker G, East RA. The attenuation of blast waves using liquid sheets. In: Archer RD, Milton BE, editors. Proceedings of the 14th international symposium on shock tubes and waves. Sydney, Australia; August 1983.
