PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 13, 2026International Journal of Applied Mechanics0 citations

Energy absorption and Deformation Behavior of Embedded Triply Periodic Minimal Surface with Various Materials

View Full Paper
YLYijie LiuYOYingxin OuyangYLYingjing Liang

Key Points

  • The aim is to explore the impact of material properties on the energy absorption and deformation behavior of triply periodic minimal surfaces.
  • Introduced hierarchical hybrid-embedding approach for two-sheet TPMS structures.
  • Conducted experiments with materials including photosensitive resin, 316L stainless steel, and aluminum alloy.
  • Analyzed energy absorption performance and yield stress of the TPMS structures.
  • Photosensitive resin showed a 700% increase in yield stress and 1326% improvement in energy absorption.
  • Aluminum alloy achieved 28.4% and 87.9% improvement in yield stress and energy absorption, respectively.
  • 316L stainless steel had modest improvements of 13.4% in yield stress and 3.2% in energy absorption.

Abstract

Porous triply periodic minimal surface (TPMS) structures exhibit great potential for impact resistance applications. However, current research faces two main challenges. First, the design flexibility of single-sheet TPMS structures is limited, primarily affecting the core pore regions. Second, the influence of material properties on performance optimization has not been fully explored. This study introduces a hierarchical hybrid-embedding approach for two-sheet TPMS structures, embedding IWP substructures with customized relative densities into both the sandwich and core pores of a two-sheet P surface. We analyze the effects of material properties, specifically photosensitive resin, 316L stainless steel, and aluminum alloy, on structural performance. Experimental results reveal a clear correlation between material characteristics and energy absorption mechanisms. The two-sheet embedded TPMS structures made from brittle materials, such as photosensitive resin and aluminum alloy, show significantly improved energy dissipation through fracture-induced deformation. Specifically, photosensitive resin exhibits a 700% increase in yield stress and a 1326% improvement in energy absorption, while aluminum alloy shows a 28.4% and 87.9% improvement, respectively. In contrast, 316L stainless steel, which relies on plastic deformation for energy dissipation, shows only modest improvements of 13.4% in yield stress and 3.2% in energy absorption. These findings not only demonstrate the enhanced impact resistance of the two-sheet embedded TPMS design but also highlight the critical role of material properties in optimizing topological structures. This research provides valuable insights for impact-resistant structural design, with practical applications in aerospace, civil infrastructure, and advanced manufacturing.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Liu et al. (2026) studied this question.

synapsesocial.com/papers/69b3ab4c02a1e69014ccc1c7https://doi.org/10.1142/s1758825126500286
Ask AI
Helpful
Bookmark
Share
View Full Paper

Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Energy absorption in lattice structures in dynamics: Experiments2015 · 323 citations
  2. 2Compression after impact test (CAI) on NOMEX™ honeycomb sandwich panels with thin aluminum skins2014 · 92 citations
  3. 3Design and analysis of strut-based lattice structures for vibration isolation2017 · 206 citations
  4. 4The indentation response of Nickel nano double gyroid lattices2016 · 45 citations
  5. 5A Review on Functionally Graded Materials and Structures via Additive Manufacturing: From Multi‐Scale Design to Versatile Functional Properties2020 · 603 citations