A mesoscopic reaction rate model for shock initiation of multi-component PBX explosives
•A reaction rate model of shock initiation for multi-component PBX is developed.•The model describes the effects of identities of each explosive component in PBX.•Constants in the model need not be adjusted for changed explosive mixture ratios. The primary goal of this research is to develop a three...
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Veröffentlicht in: | Journal of hazardous materials 2016-11, Vol.317, p.44-51 |
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Format: | Artikel |
Sprache: | eng |
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Zusammenfassung: | •A reaction rate model of shock initiation for multi-component PBX is developed.•The model describes the effects of identities of each explosive component in PBX.•Constants in the model need not be adjusted for changed explosive mixture ratios.
The primary goal of this research is to develop a three-term mesoscopic reaction rate model that consists of a hot-spot ignition, a low-pressure slow burning and a high-pressure fast reaction terms for shock initiation of multi-component Plastic Bonded Explosives (PBX). Thereinto, based on the DZK hot-spot model for a single-component PBX explosive, the hot-spot ignition term as well as its reaction rate is obtained through a “mixing rule” of the explosive components; new expressions for both the low-pressure slow burning term and the high-pressure fast reaction term are also obtained by establishing the relationships between the reaction rate of the multi-component PBX explosive and that of its explosive components, based on the low-pressure slow burning term and the high-pressure fast reaction term of a mesoscopic reaction rate model. Furthermore, for verification, the new reaction rate model is incorporated into the DYNA2D code to simulate numerically the shock initiation process of the PBXC03 and the PBXC10 multi-component PBX explosives, and the numerical results of the pressure histories at different Lagrange locations in explosive are found to be in good agreements with previous experimental data. |
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ISSN: | 0304-3894 1873-3336 |
DOI: | 10.1016/j.jhazmat.2016.05.052 |