Multi-scale modeling of shock initiation of a pressed energetic material. II. Effect of void–void interactions on energy localization

Author:

Nguyen Yen T.1ORCID,Seshadri Pradeep K.1ORCID,Sen Oishik1ORCID,Hardin David B.2ORCID,Molek Christopher D.2ORCID,Udaykumar H. S.1ORCID

Affiliation:

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

2. Munitions Directorate, Air Force Research Laboratory, Eglin AFB, Eglin, Florida 32542, USA

Abstract

Heterogeneous energetic materials (EMs) contain microstructural defects such as voids, cracks, interfaces, and delaminated zones. Under shock loading, these defects offer potential sites for energy localization, i.e., hotspot formation. In a porous EM, the collapse of one void can generate propagating blast waves and hotspots that can influence the hotspot phenomena at neighboring voids. Such void–void interactions must be accounted for in predictive multi-scale models for the reactive response of a porous EM. To infuse such meso-scale phenomena into a multi-scale framework, a meso-informed ignition and growth model (MES-IG) has been developed, where the influence of void–void interactions is incorporated into the overall reaction rate through a function, [Formula: see text]. Previously, MES-IG was applied to predict the sensitivity and reactive response of EM, where [Formula: see text] was assumed to be a function of the overall sample porosity alone. This paper performs a deeper analysis to model the strong dependency of [Formula: see text] on other factors, such as void size and shock strength. The improved model for void–void interactions produces good agreement with direct numerical simulations of the HE microstructures and, thus, advances the predictive capability of multi-scale models of the shock response and sensitivity of EM.

Funder

Air Force Research Laboratory

Air Force Office of Scientific Research

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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