Dynamic Response and Energy Absorption of Lattice Sandwich Composite Structures Under Underwater Explosive Load

Xiaolong Zhang, Shengjie Sun*, Xiao Kang*, Zhixin Huang, Ying Li

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

This study investigates the underwater explosion resistance of aluminum alloy octet-truss lattice sandwich structures using shock tube experiments and LS-DYNA simulations. A systematic analysis reveals key mechanisms influencing protective performance. The sandwich configuration mitigates back plate displacement through quadrilateral inward deformation, exhibiting phased deformation responses between face plates and back plates mediated by lattice interactions. Increasing the lattice relative density from 0.1 to 0.3 reduces maximum back plate displacement by 22.2%. While increasing the target plate thickness to 1.5 mm reduces displacement by 47.6%, it also decreases energy absorption efficiency by 20% due to limited plastic deformation. Fluid–structure interaction simulations correlate well with 3D-DIC deformation measurements. The experimental results demonstrate the exceptional impact energy absorption capacity of the octet-truss lattice and highlight the importance of stiffness-matching strategies for enhanced energy dissipation. These findings provide valuable insights for optimizing the design of underwater protection structures.

Original languageEnglish
Article number1317
JournalMaterials
Volume18
Issue number6
DOIs
Publication statusPublished - Mar 2025

Keywords

  • dynamic response
  • energy absorption
  • fluid–structure interaction
  • lattice structure
  • underwater explosion

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