Complex Deformation in Soft Cylindrical Structures via Programmable Sequential Instabilities

Yi Yang, Helen Read, Mohammed Sbai, Ahmad Zareei, Antonio Elia Forte, David Melancon*, Katia Bertoldi*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

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Abstract

The substantial deformation exhibited by hyperelastic cylindrical shells under pressurization makes them an ideal platform for programmable inflatable structures. If negative pressure is applied, the cylindrical shell will buckle, leading to a sequence of rich deformation modes, all of which are fully recoverable due to the hyperelastic material choice. While the initial buckling event under vacuum is well understood, here, the post-buckling regime is explored and a region in the design space is identified in which a coupled twisting-contraction deformation mode occurs; by carefully controlling the geometry of our homogeneous shells, the proportion of contraction versus twist can be controlled. Additionally, bending as a post-buckling deformation mode can be unlocked by varying the thickness of our shells across the circumference. Since these soft shells can fully recover from substantial deformations caused by buckling, then these instability-driven deformations are harnessed to build soft machines capable of a programmable sequence of movements with a single actuation input.

Original languageEnglish
Article number2406611
JournalAdvanced Materials
Volume36
Issue number46
Early online date6 Sept 2024
DOIs
Publication statusPublished - 14 Nov 2024

Keywords

  • cylindrical shells
  • programmable instabilities
  • soft structures
  • vacuum

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