Equation of state measurement of detonation carbon condensates using optical microscopy and interferometry

C Christopher S. Perreault (Lawrence Livermore National Laboratory , 7000 East Avenue, Livermore, California 94550,) J Jason L. Baker (Lawrence Livermore National Laboratory , 7000 East Avenue, Livermore, California 94550,) M Michael H. Nielsen (Lawrence Livermore National Laboratory) T Trevor M. Willey (Lawrence Livermore National Laboratory) M Michael R. Armstrong (Lawrence Livermore National Laboratory , 7000 East Avenue, Livermore, California 94550,) S Sorin Bastea (Lawrence Livermore National Laboratory , 7000 East Avenue, Livermore, California 94550,) L Laurence E. Fried (Physical and Life Sciences Directorate, Lawrence Livermore National Laboratory 1 , Livermore, California 94550,)

Abstract

Thermochemical models of detonation that estimate performance (e.g., detonation velocity, energy delivery, etc.), are based on assumptions that carbon condensates (soot) formed during detonation is largely similar to bulk carbon. However, soot constituents can range from amorphous carbon to nanodiamond and include other material phases. Since thermodynamic properties of the soot such as compressibility are imperative for accurate thermochemical modeling of detonation reaction chemistry, experimental measurements of the equation of state (EOS) which determine the compressibility are vital. Due to the mixed-phase nature of detonation soot, typical methods to measure the EOS (e.g., x-ray diffraction) are untenable. In this study, the high-pressure EOS up to 20 GPa was determined for detonation soot collected from PBX 9502, Composition B (Comp B), Hexanitrostilbene (HNS), and LX-21 high explosives by employing a direct volume technique using optical microscopy and interferometry in a diamond anvil cell. Comp B soot was determined to be the least compressible [K0 = 57.9(17) GPa] with HNS soot [K0 = 53.7(15) GPa], LX-21 soot [K0 = 45.8(51) GPa], and PBX 9502 soot [K0 = 28.2(27) GPa] being more compressible, likely due to differences in nanodiamond content as compared to amorphous carbon and graphite content.

Article Details

Volume / Issue Vol. 137, Issue 22
Published June 14, 2025
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (7)

C

Christopher S. Perreault

Lawrence Livermore National Laboratory , 7000 East Avenue, Livermore, California 94550,

J

Jason L. Baker

Lawrence Livermore National Laboratory , 7000 East Avenue, Livermore, California 94550,

M

Michael H. Nielsen

Lawrence Livermore National Laboratory

T

Trevor M. Willey

Lawrence Livermore National Laboratory

M

Michael R. Armstrong

Lawrence Livermore National Laboratory , 7000 East Avenue, Livermore, California 94550,

S

Sorin Bastea

Lawrence Livermore National Laboratory , 7000 East Avenue, Livermore, California 94550,

L

Laurence E. Fried

Physical and Life Sciences Directorate, Lawrence Livermore National Laboratory 1 , Livermore, California 94550,