Impact Energy Release Characteristics of PTFE/Al/CuO Reactive Materials Measured by a New Energy Release Testing Device

Metal/polymer reactive materials have been studied and applied in a wide range of ways in recent years. This type of material is insensitive under normal conditions but reacts violently and releases a large amount of chemical energy under high-speed impact or high strain rate loading conditions. Com...

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Main Authors: Liangliang Ding, Jingyuan Zhou, Wenhui Tang, Xianwen Ran, Yuxuan Hu
Format: Article
Language:English
Published: MDPI AG 2019-01-01
Series:Polymers
Subjects:
Online Access:http://www.mdpi.com/2073-4360/11/1/149
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spelling doaj-1b9e5b4898a24b97b5047a2865ac50f42020-11-25T01:43:10ZengMDPI AGPolymers2073-43602019-01-0111114910.3390/polym11010149polym11010149Impact Energy Release Characteristics of PTFE/Al/CuO Reactive Materials Measured by a New Energy Release Testing DeviceLiangliang Ding0Jingyuan Zhou1Wenhui Tang2Xianwen Ran3Yuxuan Hu4College of Liberal Arts and Sciences, National University of Defense Technology, Changsha 410073, ChinaCollege of Liberal Arts and Sciences, National University of Defense Technology, Changsha 410073, ChinaCollege of Liberal Arts and Sciences, National University of Defense Technology, Changsha 410073, ChinaCollege of Liberal Arts and Sciences, National University of Defense Technology, Changsha 410073, ChinaCollege of Liberal Arts and Sciences, National University of Defense Technology, Changsha 410073, ChinaMetal/polymer reactive materials have been studied and applied in a wide range of ways in recent years. This type of material is insensitive under normal conditions but reacts violently and releases a large amount of chemical energy under high-speed impact or high strain rate loading conditions. Compared with conventional explosives, it has better mechanical properties, and its unit mass energy is several times that of TNT. In this paper, PTFE/Al/CuO reactive materials are the main research objects, and we assess the impact energy release abilities of this type of reactive material through experimental research. To this end, eight sets of material formulations are designed, and the effects of particle size, the ratio of PTFE/Al and Al/CuO materials, and sintering on the energy release ability of the reactive materials are investigated. All experiments are carried out based on a self-designed new energy release testing device. The experimental device can measure the pressure time history curve generated by the reactive materials, and the rationality of the pressure time history curve can also be verified by the displacement time curve of the piston. The results show that with an increase in the Al/CuO thermite content, the energy release rate of the reactive material clearly increases, which is attributed to the reaction threshold of Al/CuO being low and because the heat generated can promote the reaction of PTFE/Al. The energy release rate of the nano-scale reactive materials is higher than that of the micron-scale reactive materials because the reduction in particle size results in a larger specific surface area. Thus, the energy required for ignition is lower. The energy release rate of sintered reactive materials is higher than that of unsintered reactive materials, which can be explained by the interfacial area between Al particles and PTFE particles in sintered reactive materials being larger, which makes the reaction more sufficient. The self-designed energy release testing device for the reactive materials and the conclusions obtained in this paper have clear significance for guiding engineering applications.http://www.mdpi.com/2073-4360/11/1/149PTFE/Al/CuOreactive materialsimpact-initiated energetic materialssintering processenergy release testdrop hammer
collection DOAJ
language English
format Article
sources DOAJ
author Liangliang Ding
Jingyuan Zhou
Wenhui Tang
Xianwen Ran
Yuxuan Hu
spellingShingle Liangliang Ding
Jingyuan Zhou
Wenhui Tang
Xianwen Ran
Yuxuan Hu
Impact Energy Release Characteristics of PTFE/Al/CuO Reactive Materials Measured by a New Energy Release Testing Device
Polymers
PTFE/Al/CuO
reactive materials
impact-initiated energetic materials
sintering process
energy release test
drop hammer
author_facet Liangliang Ding
Jingyuan Zhou
Wenhui Tang
Xianwen Ran
Yuxuan Hu
author_sort Liangliang Ding
title Impact Energy Release Characteristics of PTFE/Al/CuO Reactive Materials Measured by a New Energy Release Testing Device
title_short Impact Energy Release Characteristics of PTFE/Al/CuO Reactive Materials Measured by a New Energy Release Testing Device
title_full Impact Energy Release Characteristics of PTFE/Al/CuO Reactive Materials Measured by a New Energy Release Testing Device
title_fullStr Impact Energy Release Characteristics of PTFE/Al/CuO Reactive Materials Measured by a New Energy Release Testing Device
title_full_unstemmed Impact Energy Release Characteristics of PTFE/Al/CuO Reactive Materials Measured by a New Energy Release Testing Device
title_sort impact energy release characteristics of ptfe/al/cuo reactive materials measured by a new energy release testing device
publisher MDPI AG
series Polymers
issn 2073-4360
publishDate 2019-01-01
description Metal/polymer reactive materials have been studied and applied in a wide range of ways in recent years. This type of material is insensitive under normal conditions but reacts violently and releases a large amount of chemical energy under high-speed impact or high strain rate loading conditions. Compared with conventional explosives, it has better mechanical properties, and its unit mass energy is several times that of TNT. In this paper, PTFE/Al/CuO reactive materials are the main research objects, and we assess the impact energy release abilities of this type of reactive material through experimental research. To this end, eight sets of material formulations are designed, and the effects of particle size, the ratio of PTFE/Al and Al/CuO materials, and sintering on the energy release ability of the reactive materials are investigated. All experiments are carried out based on a self-designed new energy release testing device. The experimental device can measure the pressure time history curve generated by the reactive materials, and the rationality of the pressure time history curve can also be verified by the displacement time curve of the piston. The results show that with an increase in the Al/CuO thermite content, the energy release rate of the reactive material clearly increases, which is attributed to the reaction threshold of Al/CuO being low and because the heat generated can promote the reaction of PTFE/Al. The energy release rate of the nano-scale reactive materials is higher than that of the micron-scale reactive materials because the reduction in particle size results in a larger specific surface area. Thus, the energy required for ignition is lower. The energy release rate of sintered reactive materials is higher than that of unsintered reactive materials, which can be explained by the interfacial area between Al particles and PTFE particles in sintered reactive materials being larger, which makes the reaction more sufficient. The self-designed energy release testing device for the reactive materials and the conclusions obtained in this paper have clear significance for guiding engineering applications.
topic PTFE/Al/CuO
reactive materials
impact-initiated energetic materials
sintering process
energy release test
drop hammer
url http://www.mdpi.com/2073-4360/11/1/149
work_keys_str_mv AT liangliangding impactenergyreleasecharacteristicsofptfealcuoreactivematerialsmeasuredbyanewenergyreleasetestingdevice
AT jingyuanzhou impactenergyreleasecharacteristicsofptfealcuoreactivematerialsmeasuredbyanewenergyreleasetestingdevice
AT wenhuitang impactenergyreleasecharacteristicsofptfealcuoreactivematerialsmeasuredbyanewenergyreleasetestingdevice
AT xianwenran impactenergyreleasecharacteristicsofptfealcuoreactivematerialsmeasuredbyanewenergyreleasetestingdevice
AT yuxuanhu impactenergyreleasecharacteristicsofptfealcuoreactivematerialsmeasuredbyanewenergyreleasetestingdevice
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