Full-field quantitative visualization of shock-driven pore collapse and failure modes in PMMA
Abstract
The dynamic collapse of pores under shock loading is thought to be directly related to hot spot generation and material failure, which is critical to the performance of porous energetic and structural materials. However, the shock compression response of porous materials at the local, individual pore scale is not well understood. This study examines, quantitatively, the collapse phenomenon of a single spherical void in PMMA at shock stresses ranging from 0.4 to 1.0 GPa. Using a newly developed internal digital image correlation technique in conjunction with plate impact experiments, full-field quantitative deformation measurements are conducted in the material surrounding the collapsing pore for the first time. The experimental results reveal two failure mode transitions as shock stress is increased: (i) the first in situ evidence of shear localization via adiabatic shear banding and (ii) dynamic fracture initiation at the pore surface. Numerical simulations using thermo-viscoplastic dynamic finite element analysis provide insights into the formation of adiabatic shear bands (ASBs) and stresses at which failure mode transitions occur. Further numerical and theoretical modeling indicates the dynamic fracture to occur along the weakened material inside an adiabatic shear band. Finally, analysis of the evolution of pore asymmetry and models for ASB spacing elucidate the mechanisms for the shear band initiation sites, and elastostatic theory explains the experimentally observed ASB and fracture paths based on the directions of maximum shear.
Copyright and License
© 2024 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution-NonCommercial 4.0 International (CC BY-NC) license (https://creativecommons.org/licenses/by-nc/4.0/).
Acknowledgement
The research reported here was supported by the DOE/NNSA (Award No. DE-NA0003957), which is gratefully acknowledged. The authors acknowledge the Army Research Laboratory (Cooperative Agreement No. W911NF-12-2-0022) for the acquisition of high speed cameras.
Contributions
Barry P. Lawlor: Conceptualization (lead); Formal analysis (lead); Investigation (lead); Methodology (lead); Visualization (lead); Writing – original draft (lead); Writing – review & editing (equal). Vatsa Gandhi: Conceptualization (supporting); Methodology (supporting); Writing – review & editing (equal). Guruswami Ravichandran: Conceptualization (supporting); Formal analysis (supporting); Funding acquisition (lead); Supervision (lead); Writing – review & editing (equal).
Data Availability
The data that support the findings of this study are available from the corresponding author upon reasonable request.
Files
225901_1_5.0234896.pdf
Additional details
Related works
- Is new version of
- Discussion Paper: arXiv:2408.16931 (arXiv)
Funding
- United States Department of Energy
- DE-NA0003957
- DEVCOM Army Research Laboratory
- W911NF-12-2-0022
Dates
- Accepted
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2024-10-14Accepted
- Available
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2024-12-09Published online
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- Publication Status
- Published