Quantitative analysis of shear band formation around collapsing pores in shocked energetic organic crystals

L Luke Weger (Department of Mechanical Engineering, The University of Iowa 1 , Iowa City, Iowa 52242,) J Jacob Herrin (Department of Mechanical and Industrial Engineering, The University of Iowa , Iowa City, Iowa 52242, USA) C Chukwudubem Okafor (Department of Mechanical and Industrial Engineering, The University of Iowa , Iowa City, Iowa 52242, USA) J James Larentzos (U.S. Army Combat Capabilities Development Command (DEVCOM) Army Research Laboratory 2 , Aberdeen Proving Ground, Maryland 21005,) J John Brennan (U.S. Army Combat Capabilities Development Command (DEVCOM) Army Research Laboratory 2 , Aberdeen Proving Ground, Maryland 21005,) T Tommy Sewell (Department of Chemistry and Materials Science & Engineering Institute, University of Missouri 2 , Columbia, Missouri 65211,) C Catalin R. Picu (Department of Mechanical, Aerospace and Nuclear Engineering, Rensselaer Polytechnic Institute 2 , Troy, New York 12180,) H H. S. Udaykumar

Abstract

Shear bands can play a significant role in energy localization in energetic crystals loaded under the high-pressure, high strain-rate conditions of shock waves. While the origin and growth of shear bands have been well studied and visualized in atomic crystalline solids (metals and alloys), as well as in amorphous materials (e.g., metallic glasses), they are less well understood in reactive low-symmetry organic energetic crystals. Recently developed atomistic-consistent material models for commonly studied energetic crystals, HMX (1,3,5,7-tetranitro-1,3,5,7-tetrazocane) and RDX (1,3,5-trinitro-1,3,5-triazinane), have been shown in meso-scale (continuum) simulations to produce shear bands in good agreement with molecular dynamics (MD). Here, by exercising this atomistic-consistent continuum model, we analyze meso-scale simulation-generated shear band patterns during shock-induced pore collapse in HMX and RDX, spanning a wide range of pore sizes and shock strengths. Quantitative pattern analysis of shear bands is performed to extract key metrics, such as spacings at various instants of pore collapse, shear band propagation velocities, etc. These metrics show good agreement with the corresponding MD data for HMX and RDX; we assess the quantitative characteristics of the simulated shear bands against theoretical scaling relationships for shear bands developed mostly in the context of metals. The characteristics of simulated shear bands, such as spacings and growth rates, are found to align well with thermomechanical instability theory. Shear band growth rates display the expected initial slow incipience, intermediate fast growth, and later fast extinction phases seen in experiments. This work indicates that the theory of shear band formation and growth from the surface of pores and defects appears to hold across solids with quite different molecular arrangements. Valuable insights are obtained that enhance our understanding of the contribution of shear banding mechanisms to energy localization in shocked energetic materials.

Article Details

Volume / Issue Vol. 137, Issue 8
Published February 28, 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 (8)

L

Luke Weger

Department of Mechanical Engineering, The University of Iowa 1 , Iowa City, Iowa 52242,

J

Jacob Herrin

Department of Mechanical and Industrial Engineering, The University of Iowa , Iowa City, Iowa 52242, USA

C

Chukwudubem Okafor

Department of Mechanical and Industrial Engineering, The University of Iowa , Iowa City, Iowa 52242, USA

J

James Larentzos

U.S. Army Combat Capabilities Development Command (DEVCOM) Army Research Laboratory 2 , Aberdeen Proving Ground, Maryland 21005,

J

John Brennan

U.S. Army Combat Capabilities Development Command (DEVCOM) Army Research Laboratory 2 , Aberdeen Proving Ground, Maryland 21005,

T

Tommy Sewell

Department of Chemistry and Materials Science & Engineering Institute, University of Missouri 2 , Columbia, Missouri 65211,

C

Catalin R. Picu

Department of Mechanical, Aerospace and Nuclear Engineering, Rensselaer Polytechnic Institute 2 , Troy, New York 12180,

H

H. S. Udaykumar