Thermal Decomposition of RDX from Reactive Molecular Dynamics

Abstract

We use the recently developed reactive force field ReaxFF with molecular dynamics to study thermal induced chemistry in RDX [cyclic-[CH2N(NO2)]3] at various temperatures and densities. We find that the time evolution of the potential energy can be described reasonably well with a single exponential function from which we obtain an overall characteristic time of decomposition that increases with decreasing density and shows an Arrhenius temperature dependence. These characteristic timescales are in reasonable quantitative agreement with experimental measurements in a similar energetic material, HMX [cyclic-[CH2N(NO2)]4]. Our simulations show that the equilibrium population of CO and CO2 (as well as their time evolution! depend strongly of density: at low density almost all carbon atoms form CO molecules; as the density increases larger aggregates of carbon appear leading to a C deficient gas phase and the appearance of CO2 molecules. The equilibrium populations of N2 and H2O are more insensitive with respect to density and form in the early stages of the decomposition process with similar timescales.

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Document Details

Document Type
Technical Report
Publication Date
Jan 01, 2005
Accession Number
ADA466932

Entities

People

  • Adri C. Van Duin
  • Alejandro Strachan
  • Edward M. Kober
  • Jonas Oxgaard
  • William Andrew Goddard III

Organizations

  • California Institute of Technology

Tags

Communities of Interest

  • Energy and Power Technologies

DTIC Thesaurus Topics

  • Agreements
  • Chemical Reactions
  • Chemistry
  • Decomposition
  • Dissociation
  • Dynamics
  • Energetic Materials
  • Energy
  • Equations
  • Equations Of Motion
  • Low Density
  • Materials
  • Materials Science
  • Molecular Dynamics
  • Physics
  • Quantum Mechanics
  • Simulations

Readers

  • Combustion science or combustion engineering.
  • Quantum Chemistry
  • Statistical inference.