Toggling stiffness via multistability

Fuente: arXiv
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Autores principales: Oliveira, Hugo de Souza, Curatolo, Michele, Sachse, Renate, Milana, Edoardo
Formato: Preprint
Publicado: 2025
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author Oliveira, Hugo de Souza
Curatolo, Michele
Sachse, Renate
Milana, Edoardo
author_facet Oliveira, Hugo de Souza
Curatolo, Michele
Sachse, Renate
Milana, Edoardo
contents Variable stiffness is a key capability in biological and robotic systems, enabling adaptive interaction across tasks and environments. Mechanical metamaterials offer an alternative to conventional mechatronic solutions by encoding stiffness variation directly into monolithic structural architectures, reducing the need for discrete assemblies. Here, we introduce a multistable mechanical metamaterial that exhibits a toggleable stiffness effect in which the effective shear stiffness switches discretely between stable mechanical configurations. Mechanical analysis of surrogate beam models of the unit cell reveals that this behavior originates from the rotation transmitted by the support beams to the curved beam, governing the balance between bending and axial deformation. Consequently, the shear stiffness ratio between the two states can be tuned by varying the slenderness of the support beams or by incorporating localized hinges that modulate rotational transfer. Experiments on 3D-printed prototypes validate the numerical predictions and confirm consistent stiffness toggling across different geometries. Finally, we demonstrate a monolithic soft clutch that leverages this effect to achieve programmable, stepwise stiffness modulation. This work establishes a design strategy for toggleable stiffness using multistable metamaterials, with potential applications in soft robotics and smart structures where adaptive compliance is of paramount importance.
format Preprint
id arxiv_https___arxiv_org_abs_2510_09511
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Toggling stiffness via multistability
Oliveira, Hugo de Souza
Curatolo, Michele
Sachse, Renate
Milana, Edoardo
Soft Condensed Matter
Robotics
Applied Physics
Variable stiffness is a key capability in biological and robotic systems, enabling adaptive interaction across tasks and environments. Mechanical metamaterials offer an alternative to conventional mechatronic solutions by encoding stiffness variation directly into monolithic structural architectures, reducing the need for discrete assemblies. Here, we introduce a multistable mechanical metamaterial that exhibits a toggleable stiffness effect in which the effective shear stiffness switches discretely between stable mechanical configurations. Mechanical analysis of surrogate beam models of the unit cell reveals that this behavior originates from the rotation transmitted by the support beams to the curved beam, governing the balance between bending and axial deformation. Consequently, the shear stiffness ratio between the two states can be tuned by varying the slenderness of the support beams or by incorporating localized hinges that modulate rotational transfer. Experiments on 3D-printed prototypes validate the numerical predictions and confirm consistent stiffness toggling across different geometries. Finally, we demonstrate a monolithic soft clutch that leverages this effect to achieve programmable, stepwise stiffness modulation. This work establishes a design strategy for toggleable stiffness using multistable metamaterials, with potential applications in soft robotics and smart structures where adaptive compliance is of paramount importance.
title Toggling stiffness via multistability
topic Soft Condensed Matter
Robotics
Applied Physics
url https://arxiv.org/abs/2510.09511