Effective continuum models for the buckling of non-periodic architected sheets that display quasi-mechanism behaviors
arXiv:2107.01704 · doi:10.1016/j.jmps.2022.104934
Abstract
In this work, we construct an effective continuum model for architected sheets that are composed of bulky tiles connected by slender elastic joints. Due to their mesostructure, these sheets feature quasi-mechanisms -- low-energy local kinematic modes that are strongly favored over other deformations. In sheets with non-uniform mesostructure, kinematic incompatibilities arise between neighboring regions, causing out-of-plane buckling. The effective continuum model is based on a geometric analysis of the sheets' unit cells and their energetically favorable modes of deformation. Its major feature is the construction of a strain energy that penalizes deviations from these preferred modes of deformation. The effect of non-periodicity is entirely described through the use of spatially varying geometric parameters in the model. Our simulations capture the out-of-plane buckling that occurs in non-periodic specimens and show good agreement with experiments. While we only consider one class of quasi-mechanisms, our modeling approach could be applied to a diverse set of shape-morphing systems that are of interest to the mechanics community.
References in corpus (12)
- Programming Curvature using Origami Tessellations
- Bistable Auxetic Mechanical Metamaterials Inspired by Ancient Geometric Motifs
- The deal.II finite element library: design, features, and insights
- Kirigami-inspired inflatables with programmable shapes
- Making the Cut: Lattice Kirigami Rules
- Programming stiff inflatable shells from planar patterned fabrics
- Durable Bistable Auxetics Made of Rigid Solids
- Geometric charges and nonlinear elasticity of soft metamaterials
- Numerical modeling of static equilibria and bifurcations in bigons and bigon rings
- Design of pseudo-mechanisms and multistable units for mechanical metamaterials
- Compliant morphing structures from twisted bulk metallic glass ribbons
- Shape-shifting panel from 3d-printed undulated ribbon lattice