A stress-based fracture model for reacting metal ejecta

R Ryan J. Myers (J. Mike Walker ‘66 Department of Mechanical Engineering, Texas A&M University 1 , 400 Bizzell St., College Station, Texas 77840,) F Frederick Ouellet (X-Computational Physics Division, Los Alamos National Laboratory 2 , P.O. Box 1663, Los Alamos, New Mexico 87545,) J Jonathan D. Regele (X-Computational Physics Division, Los Alamos National Laboratory 2 , P.O. Box 1663, Los Alamos, New Mexico 87545,) J Jacob A. McFarland (J. Mike Walker ‘66 Department of Mechanical Engineering, Texas A&M University 1 , 400 Bizzell St., College Station, Texas 77840,)

Abstract

The evolution of reacting metal ejecta continues to be a topic of interest at the forefront of metals in reactive and extreme environments. Ejecta are small particles formed when the surface of a metal undergoes Richtmyer–Meshkov instability from a strong shock. Experiments have shown that in the case where ejecta are in ambient conditions that induce a reaction, the ejecta behave irregularly. The ejecta temperature rises and then plateaus, and the acceleration profile shows unexpected jumps. These variations are assumed to be related to the exothermic heat release and particle mass loss caused by the reaction. To explain this phenomenon, efforts to model this in simulations have increased. While current models can capture many of these physical processes, they currently assign a constant reaction shell thickness with little physical reasoning. This work remedies this problem by assigning a dynamic physically informed shell thickness to the reacting particles, using solid analysis. The shell thickness of the particles impacts the rate of change of reacted mass in the system, as well as the rate at which the particles react. The model is based on a simple stress–strain relationship and gives a dynamic assignment for when the reacting particle should begin to fracture. We compare our model to the previous computational and simulation data to analyze the effects of different model parameters.

Article Details

Volume / Issue Vol. 139, Issue 17
Published May 07, 2026
ISSN 0021-8979
Publisher American Institute of Physics

Journal Info

Journal of Applied Physics

American Institute of Physics

ISSN: 0021-8979 Physical Sciences

Authors (4)

R

Ryan J. Myers

J. Mike Walker ‘66 Department of Mechanical Engineering, Texas A&M University 1 , 400 Bizzell St., College Station, Texas 77840,

F

Frederick Ouellet

X-Computational Physics Division, Los Alamos National Laboratory 2 , P.O. Box 1663, Los Alamos, New Mexico 87545,

J

Jonathan D. Regele

X-Computational Physics Division, Los Alamos National Laboratory 2 , P.O. Box 1663, Los Alamos, New Mexico 87545,

J

Jacob A. McFarland

J. Mike Walker ‘66 Department of Mechanical Engineering, Texas A&M University 1 , 400 Bizzell St., College Station, Texas 77840,