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Solution of the Kirchhoff–Plateau Problem

  • Giulio Giuseppe Giusteri
  • , Luca Lussardi
  • , Eliot Fried*
  • *Corresponding author
  • Okinawa Institute of Science and Technology Graduate University

Research output: Contribution to journalArticlepeer-review

Abstract

The Kirchhoff–Plateau problem concerns the equilibrium shapes of a system in which a flexible filament in the form of a closed loop is spanned by a liquid film, with the filament being modeled as a Kirchhoff rod and the action of the spanning surface being solely due to surface tension. We establish the existence of an equilibrium shape that minimizes the total energy of the system under the physical constraint of noninterpenetration of matter, but allowing for points on the surface of the bounding loop to come into contact. In our treatment, the bounding loop retains a finite cross-sectional thickness and a nonvanishing volume, while the liquid film is represented by a set with finite two-dimensional Hausdorff measure. Moreover, the region where the liquid film touches the surface of the bounding loop is not prescribed a priori. Our mathematical results substantiate the physical relevance of the chosen model. Indeed, no matter how strong is the competition between surface tension and the elastic response of the filament, the system is always able to adjust to achieve a configuration that complies with the physical constraints encountered in experiments.
Original languageEnglish
Pages (from-to)1043-1063
Number of pages21
JournalJournal of Nonlinear Science
Volume27
Issue number3
DOIs
Publication statusPublished - 2017

All Science Journal Classification (ASJC) codes

  • Modelling and Simulation
  • General Engineering
  • Applied Mathematics

Keywords

  • Kirchhoff rod
  • Liquid film
  • Minimal surface
  • Plateau problem
  • Stable equilibria
  • Topological constraints

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