Rotating coupling of chiral identical twins in multimodal Kresling metamaterials for achieving ultra-high energy absorption
Auteur(s): |
Haiying Yang
Dong-Wei Shu Haibao Lu Ran Tao |
---|---|
Médium: | article de revue |
Langue(s): | anglais |
Publié dans: | Smart Materials and Structures, 7 juin 2024, n. 7, v. 33 |
Page(s): | 075002 |
DOI: | 10.1088/1361-665x/ad4e22 |
Abstrait: |
Origami structures have been widely applied for various engineering applications due to their extraordinary mechanical properties. However, the relationship between in-plane rotating coupling and energy absorption of these Origami structures is seldom studied previously. The study proposes a design strategy that utilizes identical-twin rotation (i.e. simultaneous rotation with the same chirality) and fraternal-twin rotation (i.e. simultaneous rotation with the opposite chirality) of Kresling metamaterials to achieve multimodal rotation coupling and enhanced energy absorption. Deformation mode and energy absorption properties of 3D-printed Kresling metamaterials have been studied using both quasi-static compression tests and finite element analysis. Furthermore, effects of polygon units and their connections to 2D and 3D arrangements, which generate 4 × 4 arrays and 2 × 2 × 2 arrays, have been investigated to identify the optimized structures for achieving ultra-high energy absorption of chiral Kresling metamaterials. Results showed that rotating coupling of chiral identical twins in multimodal Kresling metamaterials possesses diverse deformation patterns and ultra-high energy absorption. This study provides a novel strategy to optimize structural designs and mechanical properties of the Kresling metamaterials. |
- Informations
sur cette fiche - Reference-ID
10783926 - Publié(e) le:
20.06.2024 - Modifié(e) le:
20.06.2024