A Nonlinear Thermomechanical Model of Spinel Ceramics Applied to Aluminum Oxynitride (AlON)

Abstract

A continuum model is developed for describing deformation and failure mechanisms in crystalline solids (ceramics and minerals) with the cubic spinel structure. The constitutive model describes the response under conditions pertinent to impact loading: high pressures, high strain rates, and, possibly, high temperatures. Nonlinear elasticity, anisotropy, thermoelastic coupling, dislocation glide, twinning, shear-induced fracture, and pressure-induced pore collapse are addressed. The model is applied to enable an improved understanding of transparent ceramic aluminum oxynitride (AlON). Calculations demonstrate an accurate depiction of hydrostatic and shear stresses observed experimentally in shockloaded polycrystalline AlON. Various choices of initial resistances to slip, twinning, or shear fracture that result in similar predictions for average stresses in polycrystals but different predictions for defect densities (accumulated dislocations and twin volume fractions) are investigated. Predictions for single crystals provide insight into grain orientation effects not available from previous experimental investigations.

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Document Details

Document Type
Technical Report
Publication Date
Jan 01, 2011
Accession Number
ADA538177

Entities

People

  • John D. Clayton

Organizations

  • United States Army Research Laboratory

Tags

Communities of Interest

  • Air Platforms
  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Crystal Structure
  • Crystals
  • Elastic Properties
  • Failure Mode And Effect Analysis
  • Hardening
  • High Pressure
  • Mechanics
  • Orientation (Direction)
  • Plastic Properties
  • Polycrystals
  • Resistance
  • Shear Modulus
  • Shear Stresses
  • Single Crystals
  • Strain Rate
  • Stresses
  • Thermal Expansion

Readers

  • Computational Modeling and Simulation
  • Materials Science and Engineering.
  • Structural Health Monitoring of Composite Structures.