Simulation of Initiation in Hexanitrostilbene

ORAL

Abstract

We report on the effect of isolated voids and pairs of nearby voids on hot spot formation, growth and chemical reaction initiation in hexanitrostilbene (HNS) crystals subjected to shock loading. Large-scale, reactive molecular dynamics simulations are performed using the reactive force field (ReaxFF) as implemented in the LAMMPS software. The ReaxFF force field description for HNS has been validated previously by comparing the isothermal equation of state to available diamond anvil cell (DAC) measurements and density function theory (DFT) calculations. Micron-scale molecular dynamics simulations of a supported shockwave propagating in HNS crystal along the [010] orientation are performed ($u_p$ = 1.25 km/s, $U_s$ =4.0 km/s, $P$ = 11GPa.) We compare the effect on hot spot formation and growth rate of isolated cylindrical voids up to 0.1 µm in size with that of two 50nm voids set 100nm apart. Results from the micron-scale atomistic simulations are compared with hydrodynamics simulations.

*Sandia National Laboratories is a multi-program laboratory managed and operated by Sandia Corporation, a wholly owned subsidiary of Lock- heed Martin Corporation, for the U.S. DOE National Nuclear Security Administration under contract DE-AC04-94AL85000

Authors

  • Aidan Thompson

    • Sandia National Laboratories
  • Tzu-Ray Shan

    • Sandia National Laboratories
  • Cole Yarrington

    • Sandia National Laboratories
  • Ryan Wixom

    • Sandia National Laboratories