A computational model of twisted elastic ribbons
Madelyn Leembruggen, Jovana Andrejevic, Arshad Kudrolli, Chris H., Rycroft

TL;DR
This paper presents a lattice mass-spring model to simulate the deformation modes of twisted elastic ribbons, reproducing experimental observations and revealing complex relationships between twist, tension, and wrinkling behavior.
Contribution
The study introduces a novel irregular lattice MSM that accurately models ribbon deformation modes and provides new insights into wrinkle formation and stress distribution.
Findings
Simulations reproduce all reported experimental deformation modes.
Twist angles for wrinkle onset are well described by FvK analysis.
Longitudinal wrinkle wavelength depends on tension more complexly than previously thought.
Abstract
We develop an irregular lattice mass-spring-model (MSM) to simulate and study the deformation modes of a thin elastic ribbon as a function of applied end-to-end twist and tension. Our simulations reproduce all reported experimentally observed modes, including transitions from helicoids to longitudinal wrinkles, creased helicoids and loops with self-contact, and transverse wrinkles to accordion self-folds. Our simulations also show that the twist angles at which the primary longitudinal and transverse wrinkles appear are well described by various analyses of the F\"oppl-von K\'arm\'an (FvK) equations, but the characteristic wavelength of the longitudinal wrinkles has a more complex relationship to applied tension than previously estimated. The clamped edges are shown to suppress longitudinal wrinkling over a distance set by the applied tension and the ribbon width, but otherwise have no…
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Taxonomy
TopicsAdvanced Materials and Mechanics · Advanced Sensor and Energy Harvesting Materials · Structural Analysis and Optimization
