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A quasi-isentropic model of a cylinder driven by aluminized explosives based on characteristic line analysis

A quasi-isentropic study on the process of driving a cylinder with aluminized explosives was carried out to examine the influence of the aluminum (Al) reaction rate on cylinder expansion and the physical parameters of the detonation products. Based on the proposed quasi-isentropic hypothesis and rel...

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Published in:Defence technology 2022-11, Vol.18 (11), p.1979-1999
Main Authors: Wang, Hong-fu, Liu, Yan, Bai, Fan, Yan, Jun-bo, Li, Xu, Huang, Feng-lei
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Language:English
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cited_by cdi_FETCH-LOGICAL-c402t-55ea98e25ad95d03a2fa25768480e247555470acaad12c2fa2f3fd3acc2977e53
cites cdi_FETCH-LOGICAL-c402t-55ea98e25ad95d03a2fa25768480e247555470acaad12c2fa2f3fd3acc2977e53
container_end_page 1999
container_issue 11
container_start_page 1979
container_title Defence technology
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creator Wang, Hong-fu
Liu, Yan
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Li, Xu
Huang, Feng-lei
description A quasi-isentropic study on the process of driving a cylinder with aluminized explosives was carried out to examine the influence of the aluminum (Al) reaction rate on cylinder expansion and the physical parameters of the detonation products. Based on the proposed quasi-isentropic hypothesis and relevant isentropic theories, the characteristic lines of aluminized explosives driving a cylinder were analyzed, and a quasi-isentropic model was established. This model includes the variation of the cylinder wall velocity and the physical parameters of the detonation products with the Al reaction degree. Using previously reported experimental results, the quasi-isentropic model was verified to be applicative and accurate. This model was used to calculate the physical parameters for cylinder experiments with aluminized cyclotrimethylenetrinitramine explosives with 15.0 % and 30.0 % Al content. The results show that this quasi-isentropic model can be used not only to calculate the cylinder expansion rule or Al reaction degree, but also to calculate the physical parameters of the detonation products in the process of cylinder expansion. For explosives with 15.0 % and 30.0 % Al, 24.3 % and 18.5 % of the Al was found to have reacted at 33.9 μs and 34.0 μs, respectively. The difference in Al content results in different reaction intensity, occurrence time, and duration of two forms of reaction (diffusion and kinetic) between the Al powder and the detonation products; the post-detonation burning reaction between the Al powder and the detonation products prolongs the positive pressure action time, resulting in a continuous rise in temperature after detonation.
doi_str_mv 10.1016/j.dt.2021.08.002
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For explosives with 15.0 % and 30.0 % Al, 24.3 % and 18.5 % of the Al was found to have reacted at 33.9 μs and 34.0 μs, respectively. 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subjects Aluminized explosives
Characteristic line analysis
Cylinder experiments
Physical parameters of detonation products
Quasi-isentropic model
Reaction degree of Al powder
title A quasi-isentropic model of a cylinder driven by aluminized explosives based on characteristic line analysis
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