Modeling and simulation of preshock desensitization in heterogeneous explosives using a mesoscopic reaction rate model

Tariq Hussain, Yan Liu*, Fenglei Huang, Zhuoping Duan

*Corresponding author for this work

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Abstract

To understand and predict the response of explosive materials, numerical models are utilized to simulate various scenarios. Various hazard and vulnerability scenarios for explosives involve multiple shock compression. In the present study, a kind of mesoscopic model for shock ignition of solid heterogeneous explosives is examined in order to demonstrate its availability to account for the desensitization caused by multiple shocks in explosives. Since the mesoscopic model is based on the assumption of the elastic viscoplastic pore collapse mechanism, and on the other hand the desensitization mechanism is also usually described in connection with the closure of pores, the ability of the mesoscopic model to predict the desensitization effects must be analyzed. For this purpose, the mesoscopic model has been implemented in a hydrodynamic code (LS-DYNA) as a user-defined equation of state. For verification, the double shock, reflected shock and detonation-quenching experiments have been modeled and simulated. The data show that the model can reproduce various features of some of the previously reported experiments involving the preshock desensitization of solid explosives.

Original languageEnglish
Pages (from-to)980-988
Number of pages9
JournalSimulation
Volume91
Issue number11
DOIs
Publication statusPublished - 1 Nov 2015

Keywords

  • DZK model
  • Shock desensitization
  • detonation quenching
  • mesoscopic model
  • reflected shock ignition

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Hussain, T., Liu, Y., Huang, F., & Duan, Z. (2015). Modeling and simulation of preshock desensitization in heterogeneous explosives using a mesoscopic reaction rate model. Simulation, 91(11), 980-988. https://doi.org/10.1177/0037549715608962