Discrete particle simulation of shock wave propagation in a binary Ni plus Al powder mixture
File(s)Eakins_Journal of Applied Physics_043508_2007.pdf (3.13 MB)
Published version
Author(s)
Eakins, D
Thadhani, NN
Type
Journal Article
Abstract
Numerical simulations of shock wave propagation through discretely represented powder mixtures were performed to investigate the characteristics of deformation and mixing in the Ni+Alsystem. The initial particle arrangements and morphologies were imported from experimentally obtained micrographs of powder mixtures pressed at densities in the range of 45%–80% of the theoretical maximum density (TMD). Simulations were performed using these imported micrographs for each density compact subjected to driver velocities(Up) of 0.5, 0.75, and 1km∕s, and the resulting shock velocity(Us) was used to construct the Us-Up equation of state. The simulated equation of state for the 60% TMD mixture was validated by matching results obtained from previous gas-gun experiments. The details of shock wave propagation through the Ni+Alpowder mixtures were explored on several scales. It is shown that the shock compression of mixtures of powders of dissimilar densities and strength is associated with heterogeneous deformation processes leading to focused flow, particulation, and vortex formation, resulting in local fluctuations in pressure and temperature, which collectively are responsible for highly irregular “shock” fronts and unstable high-pressure states in granular media.
Date Issued
2007-02-20
Date Acceptance
2006-11-18
Citation
Journal of Applied Physics, 2007, 101
ISSN
1089-7550
Publisher
American Institute of Physics (AIP)
Journal / Book Title
Journal of Applied Physics
Volume
101
Copyright Statement
Copyright © 2007 American Institute of Physics. This article may be downloaded for personal use only. Any other use requires prior permission of the author and the American Institute of Physics. The following article appeared in 'Discrete particle simulation of shock wave propagation in a binary Ni plus Al powder mixture' D. Eakins and N. N. Thadhani, J. Appl. Phys. 101, 043508 (2007) and may be found at https://dx.doi.org/10.1063/1.2431682
Subjects
Science & Technology
Physical Sciences
Physics, Applied
Physics
PHYSICS, APPLIED
DIRECT NUMERICAL-SIMULATION
DYNAMIC COMPACTION
GRANULAR MEDIA
COPPER-POWDER
CONSOLIDATION
MODEL
MICROSTRUCTURES
BEHAVIOR
METALS
IMAGES
Publication Status
Published
Article Number
043508