Modeling the mechanics of HMX detonation using a Taylor–Galerkin scheme

Design of energetic materials is an exciting area in mechanics and materials science. Energetic composite materials are used as propellants, explosives, and fuel cell components. Energy release in these materials are accompanied by extreme events: shock waves travel at typical speeds of several thou...

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Main Authors: Adam V. Duran, Veera Sundararaghavan
Format: Article
Language:English
Published: Elsevier 2016-05-01
Series:Theoretical and Applied Mechanics Letters
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2095034916300149
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spelling doaj-2f7c65faf891499c92d7d6fa6fcb566d2020-11-24T23:13:42ZengElsevierTheoretical and Applied Mechanics Letters2095-03492016-05-016314314710.1016/j.taml.2016.05.002Modeling the mechanics of HMX detonation using a Taylor–Galerkin schemeAdam V. DuranVeera SundararaghavanDesign of energetic materials is an exciting area in mechanics and materials science. Energetic composite materials are used as propellants, explosives, and fuel cell components. Energy release in these materials are accompanied by extreme events: shock waves travel at typical speeds of several thousand meters per second and the peak pressures can reach hundreds of gigapascals. In this paper, we develop a reactive dynamics code for modeling detonation wave features in one such material. The key contribution in this paper is an integrated algorithm to incorporate equations of state, Arrhenius kinetics, and mixing rules for particle detonation in a Taylor–Galerkin finite element simulation. We show that the scheme captures the distinct features of detonation waves, and the detonation velocity compares well with experiments reported in literature.http://www.sciencedirect.com/science/article/pii/S2095034916300149Energetic compositesDetonationShockFinite element
collection DOAJ
language English
format Article
sources DOAJ
author Adam V. Duran
Veera Sundararaghavan
spellingShingle Adam V. Duran
Veera Sundararaghavan
Modeling the mechanics of HMX detonation using a Taylor–Galerkin scheme
Theoretical and Applied Mechanics Letters
Energetic composites
Detonation
Shock
Finite element
author_facet Adam V. Duran
Veera Sundararaghavan
author_sort Adam V. Duran
title Modeling the mechanics of HMX detonation using a Taylor–Galerkin scheme
title_short Modeling the mechanics of HMX detonation using a Taylor–Galerkin scheme
title_full Modeling the mechanics of HMX detonation using a Taylor–Galerkin scheme
title_fullStr Modeling the mechanics of HMX detonation using a Taylor–Galerkin scheme
title_full_unstemmed Modeling the mechanics of HMX detonation using a Taylor–Galerkin scheme
title_sort modeling the mechanics of hmx detonation using a taylor–galerkin scheme
publisher Elsevier
series Theoretical and Applied Mechanics Letters
issn 2095-0349
publishDate 2016-05-01
description Design of energetic materials is an exciting area in mechanics and materials science. Energetic composite materials are used as propellants, explosives, and fuel cell components. Energy release in these materials are accompanied by extreme events: shock waves travel at typical speeds of several thousand meters per second and the peak pressures can reach hundreds of gigapascals. In this paper, we develop a reactive dynamics code for modeling detonation wave features in one such material. The key contribution in this paper is an integrated algorithm to incorporate equations of state, Arrhenius kinetics, and mixing rules for particle detonation in a Taylor–Galerkin finite element simulation. We show that the scheme captures the distinct features of detonation waves, and the detonation velocity compares well with experiments reported in literature.
topic Energetic composites
Detonation
Shock
Finite element
url http://www.sciencedirect.com/science/article/pii/S2095034916300149
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