Modeling and Simulation Techniques Used in High Strain Rate Projectile Impact

A series of computational models and simulations were conducted for determining the dynamic responses of a solid metal projectile impacting a target under a prescribed high strain rate loading scenario in three-dimensional space. The focus of this study was placed on two different modeling technique...

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Main Authors: Derek G. Spear, Anthony N. Palazotto, Ryan A. Kemnitz
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Mathematics
Subjects:
Online Access:https://www.mdpi.com/2227-7390/9/3/274
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spelling doaj-7b37caaf02984745b03afd951f03a6122021-01-31T00:00:37ZengMDPI AGMathematics2227-73902021-01-01927427410.3390/math9030274Modeling and Simulation Techniques Used in High Strain Rate Projectile ImpactDerek G. Spear0Anthony N. Palazotto1Ryan A. Kemnitz2Air Force Institute of Technology, Wright-Patterson AFB, OH 45433, USAAir Force Institute of Technology, Wright-Patterson AFB, OH 45433, USAAir Force Institute of Technology, Wright-Patterson AFB, OH 45433, USAA series of computational models and simulations were conducted for determining the dynamic responses of a solid metal projectile impacting a target under a prescribed high strain rate loading scenario in three-dimensional space. The focus of this study was placed on two different modeling techniques within finite element analysis available in the Abaqus software suite. The first analysis technique relied heavily on more traditional Lagrangian analysis methods utilizing a fixed mesh, while still taking advantage of the finite difference integration present under the explicit analysis approach. A symmetry reduced model using the Lagrangian coordinate system was also developed for comparison in physical and computational performance. The second analysis technique relied on a mixed model that still made use of some Lagrangian modeling, but included smoothed particle hydrodynamics techniques as well, which are mesh free. The inclusion of the smoothed particle hydrodynamics was intended to address some of the known issues in Lagrangian analysis under high displacement and deformation. A comparison of the models was first performed against experimental results as a validation of the models, then the models were compared against each other based on closeness to experimentation and computational performance.https://www.mdpi.com/2227-7390/9/3/274high strain rate impactmodeling and simulationsmoothed particle hydrodynamicsfinite element analysis
collection DOAJ
language English
format Article
sources DOAJ
author Derek G. Spear
Anthony N. Palazotto
Ryan A. Kemnitz
spellingShingle Derek G. Spear
Anthony N. Palazotto
Ryan A. Kemnitz
Modeling and Simulation Techniques Used in High Strain Rate Projectile Impact
Mathematics
high strain rate impact
modeling and simulation
smoothed particle hydrodynamics
finite element analysis
author_facet Derek G. Spear
Anthony N. Palazotto
Ryan A. Kemnitz
author_sort Derek G. Spear
title Modeling and Simulation Techniques Used in High Strain Rate Projectile Impact
title_short Modeling and Simulation Techniques Used in High Strain Rate Projectile Impact
title_full Modeling and Simulation Techniques Used in High Strain Rate Projectile Impact
title_fullStr Modeling and Simulation Techniques Used in High Strain Rate Projectile Impact
title_full_unstemmed Modeling and Simulation Techniques Used in High Strain Rate Projectile Impact
title_sort modeling and simulation techniques used in high strain rate projectile impact
publisher MDPI AG
series Mathematics
issn 2227-7390
publishDate 2021-01-01
description A series of computational models and simulations were conducted for determining the dynamic responses of a solid metal projectile impacting a target under a prescribed high strain rate loading scenario in three-dimensional space. The focus of this study was placed on two different modeling techniques within finite element analysis available in the Abaqus software suite. The first analysis technique relied heavily on more traditional Lagrangian analysis methods utilizing a fixed mesh, while still taking advantage of the finite difference integration present under the explicit analysis approach. A symmetry reduced model using the Lagrangian coordinate system was also developed for comparison in physical and computational performance. The second analysis technique relied on a mixed model that still made use of some Lagrangian modeling, but included smoothed particle hydrodynamics techniques as well, which are mesh free. The inclusion of the smoothed particle hydrodynamics was intended to address some of the known issues in Lagrangian analysis under high displacement and deformation. A comparison of the models was first performed against experimental results as a validation of the models, then the models were compared against each other based on closeness to experimentation and computational performance.
topic high strain rate impact
modeling and simulation
smoothed particle hydrodynamics
finite element analysis
url https://www.mdpi.com/2227-7390/9/3/274
work_keys_str_mv AT derekgspear modelingandsimulationtechniquesusedinhighstrainrateprojectileimpact
AT anthonynpalazotto modelingandsimulationtechniquesusedinhighstrainrateprojectileimpact
AT ryanakemnitz modelingandsimulationtechniquesusedinhighstrainrateprojectileimpact
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