• DocumentCode
    1305477
  • Title

    A virtual test facility for simulating the dynamic response of materials

  • Author

    Aivazis, Michael ; Goddard, William A. ; Meiron, Dan ; Ortiz, Michael ; Pool, James ; Shepherd, Joseph

  • Author_Institution
    California Inst. of Technol., Pasadena, CA, USA
  • Volume
    2
  • Issue
    2
  • fYear
    2000
  • Firstpage
    42
  • Lastpage
    53
  • Abstract
    The goal of the Caltech Center is to construct a virtual test facility (VTF): a problem solving environment for full 3D parallel simulation of the dynamic response of materials undergoing compression due to shock waves. The objective is to design a software environment that will: facilitate computation in a variety of experiments in which strong shock waves impinge on targets comprising various combinations of materials; compute the target materials´ subsequent dynamic response; and validate these computations against experimental data. Successfully constructing such a facility requires modeling of the highest accuracy. We must model at atomistic scales to correctly describe the material properties of the target materials and high explosives; at intermediate (meso) scales to understand the micromechanical response of the target materials; and at continuum scales to capture properly the evolution of macroscopic effects. The article outlines such a test facility. Although it is a very simplified version of the facilities found in a shock-compression laboratory, our VTF includes all the basic features, offering a problem solving environment for validating experiments and facilitating further development of simulation capabilities.
  • Keywords
    digital simulation; materials science; parallel programming; physics computing; shock waves; 3D parallel simulation; VTF; atomistic scales; compression; continuum scales; dynamic response; experimental data; high explosives; macroscopic effects; material properties; materials response simulation; micromechanical response; problem solving environment; shock waves; shock-compression laboratory; simulation capabilities; software environment; target materials; virtual test facility; Compressive stress; Computational modeling; Electric shock; Explosives; Fluid dynamics; Materials testing; Problem-solving; Shock waves; Solids; Test facilities;
  • fLanguage
    English
  • Journal_Title
    Computing in Science & Engineering
  • Publisher
    ieee
  • ISSN
    1521-9615
  • Type

    jour

  • DOI
    10.1109/5992.825748
  • Filename
    825748