The Numerical Simulation of Composite Explosive Energy Coupling in Underwater Explosion

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This paper choose three kinds of explosives and two kinds of charge structure, the inner and outer layer, the left and the right structure. It studies the energy coupling between the two parts of explosives and the influence of charging way of energy output structure. Ls-dyna is used to numerically simulate the process, analyze this kind of composite explosive shock wave overpressure - time history curve and the change of temperature field with time when the explosive blast in deep water. Their energy outputs were compared with single formula of explosive. Simulation results show that: Using the same chemical composition, Different dual charging structure of explosives has an impact on the explosion of the same point load and the heat loss. The energy couples between two parts of explosive.

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165-169

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February 2014

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] Wang Xiaofeng, Hao Zhongzhang. Explosives in the development of new technology[J]. Chinese Journal of explosives and Propellants, 2002, 25 (4): 35-38.

Google Scholar

[2] Yu Lei, Wang Xiaofeng, Yu Ran. Under the dual composite explosives potion explosion energy output characteristics[J]. Chinese Journal of Energetic Materials, 2009, 8 (17): 415-418.

Google Scholar

[3] May Chan, Gary Meyers. Advanced thermobaric explosive compositions: US 6955732[ P], 2004.

Google Scholar

[4] Hu Shuangqi, Cao Xiong, Zhao Xueyan. Concave spherical booster charge structure study [J]. Journal of north China institute of technology, 2001, 22 (4): 301-303.

Google Scholar

[5] Nouguez B. Dual formulation warheads: a mature technology[C]. Processing of Insensitive Munitions Technology Seminar, Williamsburg: NSWC, (1996).

Google Scholar

[6] Sun Xinli, Cai Xing can, Ji Guoxun etc. The explosion impact dynamics[M]. Xi 'an: northwestern polytechnical university press, 2011-39.

Google Scholar

[7] Manfred Held. Detonation behaviour of adjacent high explosive charges with different detonation velocities[C]. The 13th Symposium (International) on Detonation, (2006).

Google Scholar

[8] Arthur Spencer, John Corley. Blast and fragmentation enhancing explosive: US 5996501[P], 1999.

Google Scholar

[9] Ding Gang Yuan Baohui. Composite propellant eccentric initiation of detonation potter [J]. Chinese Journal of explosives and Propellants, 2009, 31 (1): 79-82.

Google Scholar