Hazard evaluation of ignition sensitivity and explosion severity for three typical MH2 (M= Mg, Ti, Zr) of energetic materials

MgH2, TiH2, and ZrH2 are three typical metal hydrides that have been gradually applied to composite explosives and propellants as additives in recent years. To evaluate ignition sensitivity and explosion severity, the Hartmann device and spherical pressure vessel were used to test ignition energy an...

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Main Authors: Xing-liang Wu, Sen Xu, Ai-min Pang, Wei-guo Cao, Da-bin Liu, Xin-yu Zhu, Fei-yang Xu, Xu Wang
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2021-08-01
Series:Defence Technology
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2214914720303780
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spelling doaj-b67c0db597254db199c6e890f9eb82bc2021-07-11T04:27:42ZengKeAi Communications Co., Ltd.Defence Technology2214-91472021-08-0117412621268Hazard evaluation of ignition sensitivity and explosion severity for three typical MH2 (M= Mg, Ti, Zr) of energetic materialsXing-liang Wu0Sen Xu1Ai-min Pang2Wei-guo Cao3Da-bin Liu4Xin-yu Zhu5Fei-yang Xu6Xu Wang7School of Chemical Engineering, Nanjing University of Science and Technology, Nanjing, Jiangsu, 210094, PR ChinaSchool of Chemical Engineering, Nanjing University of Science and Technology, Nanjing, Jiangsu, 210094, PR China; Corresponding author.Science and Technology on Aerospace Chemical Power Laboratory, Hubei Institute of Aerospace Chemotechnology, Xiangyang, 441003, PR China; Corresponding author.School of Environmental and Safety Engineering, North University of China, Taiyuan, 030051, Shanxi, PR ChinaSchool of Chemical Engineering, Nanjing University of Science and Technology, Nanjing, Jiangsu, 210094, PR ChinaSchool of Chemical Engineering, Nanjing University of Science and Technology, Nanjing, Jiangsu, 210094, PR ChinaSchool of Chemical Engineering, Nanjing University of Science and Technology, Nanjing, Jiangsu, 210094, PR ChinaSchool of Chemical Engineering, Nanjing University of Science and Technology, Nanjing, Jiangsu, 210094, PR ChinaMgH2, TiH2, and ZrH2 are three typical metal hydrides that have been gradually applied to composite explosives and propellants as additives in recent years. To evaluate ignition sensitivity and explosion severity, the Hartmann device and spherical pressure vessel were used to test ignition energy and explosion pressure, respectively. The results showed that the ignition sensitivity of ZrH2, TiH2 and MgH2 gradually increased. When the concentration of MgH2 is 83.0 g/m3 in Hartmann device, the ignition energy attained a minimum of 10.0 mJ. The explosion pressure of MgH2 were 1.44 times and 1.76 times that of TiH2 and ZrH2, respectively, and the explosion pressure rising rate were 3.97 times and 9.96 times that of TiH2 and ZrH2, respectively, through the spherical pressure vessel. It indicated that the reaction reactivity and reaction rate of MgH2 were higher than that of TiH2 and ZrH2. In addition, to conduct in–depth theoretical analysis of ignition sensitivity and explosion severity, gas production and combustion heat per unit mass of ZrH2, TiH2 and MgH2 were tested by mercury manometer and oxygen bomb calorimetry. The experimental results revealed that MgH2 had a relatively high gas production per unit mass (5.15 mL/g), while TiH2 and ZrH2 both had a gas production of less than 2.0 mL/g. Their thermal stability gradually increased, leading to a gradual increase in ignition energy. Furthermore, compared with theoretical combustion heat, the combustion ratio of MgH2, TiH2 and ZrH2 was more than 96.0%, with combustion heat value of 29.96, 20.94 and 12.22 MJ/kg, respectively, which was consistent with the explosion pressure and explosion severity test results.http://www.sciencedirect.com/science/article/pii/S2214914720303780Ignition energyExplosion pressureReaction activityCombustion heat
collection DOAJ
language English
format Article
sources DOAJ
author Xing-liang Wu
Sen Xu
Ai-min Pang
Wei-guo Cao
Da-bin Liu
Xin-yu Zhu
Fei-yang Xu
Xu Wang
spellingShingle Xing-liang Wu
Sen Xu
Ai-min Pang
Wei-guo Cao
Da-bin Liu
Xin-yu Zhu
Fei-yang Xu
Xu Wang
Hazard evaluation of ignition sensitivity and explosion severity for three typical MH2 (M= Mg, Ti, Zr) of energetic materials
Defence Technology
Ignition energy
Explosion pressure
Reaction activity
Combustion heat
author_facet Xing-liang Wu
Sen Xu
Ai-min Pang
Wei-guo Cao
Da-bin Liu
Xin-yu Zhu
Fei-yang Xu
Xu Wang
author_sort Xing-liang Wu
title Hazard evaluation of ignition sensitivity and explosion severity for three typical MH2 (M= Mg, Ti, Zr) of energetic materials
title_short Hazard evaluation of ignition sensitivity and explosion severity for three typical MH2 (M= Mg, Ti, Zr) of energetic materials
title_full Hazard evaluation of ignition sensitivity and explosion severity for three typical MH2 (M= Mg, Ti, Zr) of energetic materials
title_fullStr Hazard evaluation of ignition sensitivity and explosion severity for three typical MH2 (M= Mg, Ti, Zr) of energetic materials
title_full_unstemmed Hazard evaluation of ignition sensitivity and explosion severity for three typical MH2 (M= Mg, Ti, Zr) of energetic materials
title_sort hazard evaluation of ignition sensitivity and explosion severity for three typical mh2 (m= mg, ti, zr) of energetic materials
publisher KeAi Communications Co., Ltd.
series Defence Technology
issn 2214-9147
publishDate 2021-08-01
description MgH2, TiH2, and ZrH2 are three typical metal hydrides that have been gradually applied to composite explosives and propellants as additives in recent years. To evaluate ignition sensitivity and explosion severity, the Hartmann device and spherical pressure vessel were used to test ignition energy and explosion pressure, respectively. The results showed that the ignition sensitivity of ZrH2, TiH2 and MgH2 gradually increased. When the concentration of MgH2 is 83.0 g/m3 in Hartmann device, the ignition energy attained a minimum of 10.0 mJ. The explosion pressure of MgH2 were 1.44 times and 1.76 times that of TiH2 and ZrH2, respectively, and the explosion pressure rising rate were 3.97 times and 9.96 times that of TiH2 and ZrH2, respectively, through the spherical pressure vessel. It indicated that the reaction reactivity and reaction rate of MgH2 were higher than that of TiH2 and ZrH2. In addition, to conduct in–depth theoretical analysis of ignition sensitivity and explosion severity, gas production and combustion heat per unit mass of ZrH2, TiH2 and MgH2 were tested by mercury manometer and oxygen bomb calorimetry. The experimental results revealed that MgH2 had a relatively high gas production per unit mass (5.15 mL/g), while TiH2 and ZrH2 both had a gas production of less than 2.0 mL/g. Their thermal stability gradually increased, leading to a gradual increase in ignition energy. Furthermore, compared with theoretical combustion heat, the combustion ratio of MgH2, TiH2 and ZrH2 was more than 96.0%, with combustion heat value of 29.96, 20.94 and 12.22 MJ/kg, respectively, which was consistent with the explosion pressure and explosion severity test results.
topic Ignition energy
Explosion pressure
Reaction activity
Combustion heat
url http://www.sciencedirect.com/science/article/pii/S2214914720303780
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