Hostname: page-component-cd9895bd7-jn8rn Total loading time: 0 Render date: 2024-12-27T02:04:14.684Z Has data issue: false hasContentIssue false

The Fragmentation of Al-W Granular Composites Under Explosive Loading

Published online by Cambridge University Press:  01 February 2013

Karl L. Olney
Affiliation:
Department of Mechanical and Aerospace Engineering, University of California, San Diego, San Diego, California, USA
Po-Hsun Chiu
Affiliation:
Material Science and Engineering program, University of California, San Diego, San Diego, California, USA
Vitali F. Nesterenko
Affiliation:
Department of Mechanical and Aerospace Engineering, University of California, San Diego, San Diego, California, USA Material Science and Engineering program, University of California, San Diego, San Diego, California, USA
David J. Benson
Affiliation:
Department of Structural Engineering, University of California, San Diego, San Diego, California, USA
Chris Braithwaite
Affiliation:
Fracture and Shock Physics, SMF Group, Department of Physics, Cavendish Laboratory, Cambridge, CB3 0HE, United Kingdom
Adam Collins
Affiliation:
Fracture and Shock Physics, SMF Group, Department of Physics, Cavendish Laboratory, Cambridge, CB3 0HE, United Kingdom
David Williamson
Affiliation:
Fracture and Shock Physics, SMF Group, Department of Physics, Cavendish Laboratory, Cambridge, CB3 0HE, United Kingdom
Francesca McKenzie
Affiliation:
Institute of Shock Physics, Imperial College London, South Kensington Campus, London, SW7 2AZ, United Kingdom
Get access

Abstract

Small scale explosively driven fragmentation experiments have been performed on Aluminum (Al)-Tungsten (W) granular composite rings processed using cold isostatic compression of Al and W powders with a particle size of 4-30 microns. Fragments collected from the experiments had a maximum size of the order of a few hundred micrometers. This is a dramatic reduction in the fragment size when compared to the 1-10 mm typical for a homogeneous material such as solid aluminum under similar loading conditions. Numerical simulations of the experiment were performed to elucidate the mechanisms of fragmentation that were responsible for this shift in fragmentation size scales. Simulations were performed with a significantly stronger explosive driver to examine how the mechanisms of fragmentation change when the detonation pressure increases.

Type
Articles
Copyright
Copyright © Materials Research Society 2013

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

REFERENCES

Beksted, M.W., Comb., Exp., and Shock Waves. 41, 533 (2005).10.1007/s10573-005-0067-2CrossRefGoogle Scholar
Nesterenko, V.F, Chiu, P.-H., Braithwaite, C., Collins, A., Williamson, D., Olney, K.L., Benson, D.J., and McKenzie, F., AIP Conf. Proc. 1426, 533 (2012).10.1063/1.3686334CrossRefGoogle Scholar
Grady, D.E., Fragmentation of Rings and Shells, The Legacy of N.F. Mott (Spinger, New York, 2006).10.1007/b138675CrossRefGoogle Scholar
Olney, K.L., Chiu, P.-H., Lee, C.-W., Nesterenko, V.F., and Benson, D.J., J. Appl. Phys. 110, 114908 (2011).10.1063/1.3665644CrossRefGoogle Scholar
Benson, D.J., Comput. Methods Appl. Mech. Eng. 99, 235 (1992).10.1016/0045-7825(92)90042-ICrossRefGoogle Scholar
Vitali, E. and Benson, D.J., Int. J. Numer. Methods Eng. 67, 1420 (2006).CrossRefGoogle Scholar
Johnson, G.R. and Cook, W.H., Eng. Fract. Mech. 21, 31 (1985).10.1016/0013-7944(85)90052-9CrossRefGoogle Scholar
Olney, K.L., Nesterenko, V.F., and Benson, D.J., Appl. Phys. Lett. 100, 191910 (2012).10.1063/1.4711768CrossRefGoogle Scholar