Molecular-Dynamics Study on the Impact Energy Release Characteristics of Fe–Al Energetic Jets

Fe–Al energetic material releases a large amount of energy under impact loading; therefore, it can replace traditional materials and be used in new weapons. This paper introduces the macroscopic experiment and microscopic molecular-dynamics simulation research on the energy release characteristics o...

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Main Authors: Qiang Li, Chunlan Jiang, Ye Du
Format: Article
Language:English
Published: MDPI AG 2021-09-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/18/5249
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spelling doaj-4c21d16dbdf542479b35a1cd5af4f5e32021-09-26T00:36:29ZengMDPI AGMaterials1996-19442021-09-01145249524910.3390/ma14185249Molecular-Dynamics Study on the Impact Energy Release Characteristics of Fe–Al Energetic JetsQiang Li0Chunlan Jiang1Ye Du2College of Mechatronic Engineering, North University of China, Taiyuan 030051, ChinaState Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing 100081, ChinaCollege of Mechatronic Engineering, North University of China, Taiyuan 030051, ChinaFe–Al energetic material releases a large amount of energy under impact loading; therefore, it can replace traditional materials and be used in new weapons. This paper introduces the macroscopic experiment and microscopic molecular-dynamics simulation research on the energy release characteristics of Fe–Al energetic jets under impact loading. A macroscopic dynamic energy acquisition test system was established to quantitatively obtain the composition of Fe–Al energetic jet reaction products. A momentum mirror impacting the Fe–Al particle molecular model was established and the microstructure evolution and impact thermodynamic response of Fe–Al particles under impact loading were analyzed. The mechanism of multi-scale shock-induced chemical reaction of Fe–Al energetic jets is discussed. The results show that the difference in velocity between Fe and Al atoms at the shock wave fronts is the cause of the shock-induced reaction; when the impact strength is low, the Al particles are disordered and amorphous, while the Fe particles remain in their original state and only the oxidation reaction of Al and a small amount intermetallic compound reaction occur. With the increase of impact strength, Al particles and Fe particles are completely disordered and amorphized in a high-temperature and high-pressure environment, fully mixed and penetrated. The temperature of the system rises rapidly, due to a violent thermite reaction, and the energy released by the jet shows an increasing trend; there is an impact intensity threshold, so that the jet release energy reaches the upper limit.https://www.mdpi.com/1996-1944/14/18/5249energetic jetsimpact loadingenergy releasemolecular dynamicsmulti-scale
collection DOAJ
language English
format Article
sources DOAJ
author Qiang Li
Chunlan Jiang
Ye Du
spellingShingle Qiang Li
Chunlan Jiang
Ye Du
Molecular-Dynamics Study on the Impact Energy Release Characteristics of Fe–Al Energetic Jets
Materials
energetic jets
impact loading
energy release
molecular dynamics
multi-scale
author_facet Qiang Li
Chunlan Jiang
Ye Du
author_sort Qiang Li
title Molecular-Dynamics Study on the Impact Energy Release Characteristics of Fe–Al Energetic Jets
title_short Molecular-Dynamics Study on the Impact Energy Release Characteristics of Fe–Al Energetic Jets
title_full Molecular-Dynamics Study on the Impact Energy Release Characteristics of Fe–Al Energetic Jets
title_fullStr Molecular-Dynamics Study on the Impact Energy Release Characteristics of Fe–Al Energetic Jets
title_full_unstemmed Molecular-Dynamics Study on the Impact Energy Release Characteristics of Fe–Al Energetic Jets
title_sort molecular-dynamics study on the impact energy release characteristics of fe–al energetic jets
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2021-09-01
description Fe–Al energetic material releases a large amount of energy under impact loading; therefore, it can replace traditional materials and be used in new weapons. This paper introduces the macroscopic experiment and microscopic molecular-dynamics simulation research on the energy release characteristics of Fe–Al energetic jets under impact loading. A macroscopic dynamic energy acquisition test system was established to quantitatively obtain the composition of Fe–Al energetic jet reaction products. A momentum mirror impacting the Fe–Al particle molecular model was established and the microstructure evolution and impact thermodynamic response of Fe–Al particles under impact loading were analyzed. The mechanism of multi-scale shock-induced chemical reaction of Fe–Al energetic jets is discussed. The results show that the difference in velocity between Fe and Al atoms at the shock wave fronts is the cause of the shock-induced reaction; when the impact strength is low, the Al particles are disordered and amorphous, while the Fe particles remain in their original state and only the oxidation reaction of Al and a small amount intermetallic compound reaction occur. With the increase of impact strength, Al particles and Fe particles are completely disordered and amorphized in a high-temperature and high-pressure environment, fully mixed and penetrated. The temperature of the system rises rapidly, due to a violent thermite reaction, and the energy released by the jet shows an increasing trend; there is an impact intensity threshold, so that the jet release energy reaches the upper limit.
topic energetic jets
impact loading
energy release
molecular dynamics
multi-scale
url https://www.mdpi.com/1996-1944/14/18/5249
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AT chunlanjiang moleculardynamicsstudyontheimpactenergyreleasecharacteristicsoffealenergeticjets
AT yedu moleculardynamicsstudyontheimpactenergyreleasecharacteristicsoffealenergeticjets
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