Hysteretic wavelength selection in isometric, unsupported radial wrinkling
Anshuman S. Pal

TL;DR
This paper investigates how wavelength selection in unsupported radial wrinkling patterns is governed by a hysteretic mechanism resulting from the interplay of bending and stretching energies, with a scale sensitive to sheet dimensions and contraction.
Contribution
It introduces a novel hysteretic wavelength selection mechanism based on energy competition, supported by numerical simulations, in unsupported radial wrinkling.
Findings
Wavelength scale * w^{2/3} t^{1/3}
Arrest criterion for wrinkle coarsening at
Support for coarser wavelengths without penalty
Abstract
In [Pal et al., arXiv:2206.03552], the authors discuss how an unsupported flat annulus contracted at its inner boundary by a factor , buckles into a radial wrinkling pattern that is fully isometric and tension-free. What selects the wavelength in such a pure-bending configuration, in the absence of any competing sources of work? In this paper, with the support of numerical simulations, we argue that competition between stretching and bending energies at local, mesoscopic scales leads to the selection of a wavelength scale sensitive to both the width and thickness of the sheet: . This scale corresponds to an arrest criterion for wrinkle coarsening starting from any wavelength , which can be interpreted in terms of both size and energetic barriers to further coarsening.…
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Taxonomy
TopicsAdvanced Materials and Mechanics · Structural Analysis and Optimization · Cellular Mechanics and Interactions
