Influence of Mass Ratio on Forward and Reverse Ballistic Impact Equivalence: Experiments, Simulations, and Mechanism Analysis

J. Liu, F. Huang, K. Xu, L. Liu, T. Zuo, A. Pi*

*Corresponding author for this work

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Abstract

Reverse ballistic impact tests are widely used for studying dynamic responses because they provide more comprehensive and quantitative projectile/rod response results than forward impact tests. To examine equivalent forward and reverse conditions, a series of 8-cm length oxygen-free copper rods with varying length–diameter ratios was used in forward and reverse ballistic Taylor impact experiments with velocities and strain ratios of 104–215 m/s and 1.25 × 103–2.5 × 103 s-1, respectively. Digital image correlation (DIC) and traditional optical measurements were used to determine instantaneous responses at the μs level. Based on DIC, transient structural deformation, and plastic wave propagation, the forward and reverse length difference at similar velocities ranges from 2 to 6.95 %. Rules governing deformation from the perspective of energy, along with rules for changes in energy and plastic wave propagation were determined. The relative deformation energy error was below 5 % for target projectile mass ratios above 20.

Original languageEnglish
Pages (from-to)387-404
Number of pages18
JournalExperimental Mechanics
Volume57
Issue number3
DOIs
Publication statusPublished - 1 Mar 2017

Keywords

  • Digital image correlation technology
  • Penetrator
  • Reverse ballistic test
  • Structural response
  • Taylor impact test

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Liu, J., Huang, F., Xu, K., Liu, L., Zuo, T., & Pi, A. (2017). Influence of Mass Ratio on Forward and Reverse Ballistic Impact Equivalence: Experiments, Simulations, and Mechanism Analysis. Experimental Mechanics, 57(3), 387-404. https://doi.org/10.1007/s11340-016-0225-3