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A Novel Hierarchical Multi-Stable Cylindrical Structure with Superior Energy Trapping

  • Yu Wang
  • , Maosheng Huang
  • , Qiang Tao*
  • , Xiaoyu Chen
  • , Jirong Wang
  • , Qingxiang Ji*
  • *Corresponding author for this work
  • Qingdao University
  • University de Franche-Comté

Research output: Contribution to journalArticlepeer-review

Abstract

Multi-stable mechanical metamaterials based on the snap-through behavior of cosine beams have been shown to have significant potential in the field of capacity absorption due to their advantages such as reusability and structural simplicity. However, traditional multi-stable metamaterials have exhibited limitations in both energy absorption and trapping ability. Inspired by the bionic multilevel structure, a novel hierarchical multi-stable cylindrical structure (HMCS) based on cosine curved beams is proposed. We investigated the snap-through behaviors and energy absorption capacity of the HMCS. Both finite element simulation results and experimental results show that the hierarchical multi-stable structure exhibits excellent specific energy absorption and energy trapping capabilities compared to traditional multi-stable cylindrical structures (TMCSs). Furthermore, by analyzing the effect of height h and thickness t on the snap-through behavior of the structure, the key parameters determining the mono-stable or bi-stable response are identified. In addition, a gradient-based study of the structure reveals the dominant role of stiffness in the snap-through behavior of multilayer structures. This work provides insights into the application of multi-stable cylindrical structures in energy trapping and absorption and offers a new strategy for designing high-efficiency energy-absorbing metamaterials.

Original languageEnglish
Article number7748
JournalApplied Sciences (Switzerland)
Volume15
Issue number14
DOIs
StatePublished - Jul 2025

Keywords

  • energy trapping
  • mechanical metamaterial
  • multi-stable
  • negative stiffness
  • snap-through behavior

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