PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
April 11, 2026Materials0 citationsOpen Access

The Low-Velocity Oblique Impact Resistance of 3D-Printed Bouligand Laminates

View Full Paper
SWShuo WangYLY LiXGXianqiang Ge

Key Points

  • The research aims to assess the oblique impact resistance of 3D-printed Bouligand laminates under varying conditions.
  • Fabricated 3D-printed Bouligand laminates with helical angles of 0°, 7°, 15°, 60°, and 90°.
  • Conducted low-velocity drop-weight impact tests at angles of 0°, 30°, 45°, and 60°.
  • Monitored damage evolution and energy dissipation during impact.
  • Performed numerical analysis using a finite element model to validate experimental results.
  • Identified the 15° helical configuration as the optimal design for impact resistance.
  • Exhibited distinct temporal evolutions of contact forces during impacts.
  • Validated numerical models with a deviation of less than 10% from experimental findings.

Abstract

Traditional homogeneous materials often face an inherent trade-off between strength and toughness, restricting their application in high-performance impact protection. Mechanical metamaterials overcome this fundamental limitation by integrating structure and material. The 3D-printed Bouligand laminates (3DPBLs), a type of mechanical metamaterial, are renowned for their exceptional impact resistance. While the 3DPBLs have been proven to provide superior resistance under normal impact, actual service conditions inevitably involve complex, multi-directional loading. We aimed to investigate the 3DPBLs’ oblique impact resistance here. To this purpose, samples of 3DPBLs with varying helical angles (0°, 7°, 15°, 60°, 90°) were fabricated and subjected to low-velocity drop-weight impact tests at impact angles of 0°, 30°, 45°, and 60° to evaluate their damage evolution and energy dissipation. The experimental investigation exhibited distinct temporal evolutions of contact forces, with the 15° helical configuration identified as the optimal design. Further numerical analysis using a finite element model (validated with a deviation < 10%) is conducted to simulate performance under diverse impact angles in order to validate the reasonability of the experimental investigation. Mechanistically, 3DPBLs enhance impact resistance by increasing fracture tortuosity through their periodically rotated layered structure. These findings establish a theoretical foundation for developing high-performance, lightweight, and toughened protective materials.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69d9e52b78050d08c1b755b2https://doi.org/10.3390/ma19081502
Ask AI
Helpful
Bookmark
Share
View Full Paper