Buckling mediated by mobile localized elastic excitations
arXiv:2310.17478 · doi:10.1093/pnasnexus/pgae083
Abstract
Experiments reveal that structural transitions in thin sheets are mediated by the passage of transient and stable mobile localized elastic excitations. These ``crumples'' or ``d-cones'' nucleate, propagate, interact, annihilate, and escape. Much of the dynamics occurs on millisecond time scales. Nucleation sites correspond to regions where generators of the ideal unstretched surface converge. Additional stable intermediate states illustrate two forms of quasistatic inter-crumple interaction through ridges or valleys. These interactions create pairs from which extended patterns may be constructed in larger specimens. The onset of localized transient deformation with increasing sheet size is correlated with a characteristic stable crumple size, whose measured scaling with thickness is consistent with prior theory and experiment for localized elastic features in thin sheets. We offer a new theoretical justification of this scaling.
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References in corpus (7)
- Advances in Shell Buckling: Theory and Experiments
- Bifurcations of buckled, clamped anisotropic rods and thin bands under lateral end translations
- Triangular buckling patterns of twisted inextensible strips
- Elastic building blocks for confined sheets
- Scaling of the buckling transition of ridges in thin sheets
- Crescent Singularities in Crumpled Sheets
- Curvature condensation and bifurcation in an elastic shell