Densification and Devitrification of Fused Silica Induced by Ballistic Impact: A Computational Investigation

Abstract

A molecular-level computational investigation is carried out to determine the dynamic response and material topology changes of fused silica subjected to ballistic impact by a hard projectile. The analysis was focused on the investigation of specific aspects of the dynamic response and of the topological changes such as the deformation of highly sheared and densified regions, and the conversion of amorphous fused silica to SiO2 crystalline polymorphs (in particular, alpha-quartz and stishovite). The topological changes in question were determined by carrying out a post-processing atom-coordination procedure. This procedure suggested the formation of stishovite (and perhaps alpha-quartz) within fused silica during ballistic impact. To rationalize the findings obtained, the all-atom molecular-level computational analysis is complemented by a series of quantum-mechanics density functional theory(DFT) computations. The latter computations enable determination of the relative potential energies of the fused silica, alpha-quartz and stishovite, under ambient pressure (i.e., under their natural densities) as well as under imposed (as high as 50GPa) pressures(i.e., under higher densities) and shear strains. In addition, the transition states associated with various fused-silica devitrification processes were identified. The results obtained are found to be in good agreement with their respective experimental counterparts.

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Document Details

Document Type
Technical Report
Publication Date
Mar 25, 2015
Accession Number
AD1000020

Entities

People

  • B. A. Cheeseman
  • J. S. Snipes
  • Mica Grujicic
  • R. Yavari
  • S. Ramaswami

Organizations

  • Clemson University

Tags

Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Computational Science
  • Crystal Structure
  • Density Functional Theory
  • Diffraction
  • Distribution Functions
  • Dynamic Response
  • High Pressure
  • Materials
  • Materials Science
  • Mechanics
  • Molecular Dynamics
  • Nanomaterials
  • O Rings
  • Optical Materials
  • Potential Energy
  • Tectosilicates
  • Topology

Readers

  • Mechanical Engineering/Mechanics of Materials.
  • Quantum Chemistry
  • Surface Coatings Technology.

Technology Areas

  • Quantum Computing