English

A stabilized finite element formulation for liquid shells and its application to lipid bilayers

Computational Engineering, Finance, and Science 2017-01-04 v2 Soft Condensed Matter

Abstract

This paper presents a new finite element (FE) formulation for liquid shells that is based on an explicit, 3D surface discretization using C1C^1-continuous finite elements constructed from NURBS interpolation. Both displacement-based and mixed FE formulations are proposed. The latter is needed for area-incompressible material behavior, where penalty-type regularizations can lead to misleading results. In order to obtain quasi-static solutions, several numerical stabilization schemes are proposed based on either stiffness, viscosity or projection. Several numerical examples are considered in order to illustrate the accuracy and the capabilities of the proposed formulation, and to compare the different stabilization schemes. The presented formulation is capable of simulating non-trivial surface shapes associated with tube formation and protein-induced budding of lipid bilayers. In the latter case, the presented formulation yields non-axisymmetric solutions, which have not been observed in previous simulations. It is shown that those non-axisymmetric shapes are preferred over axisymmetric ones.

Keywords

Cite

@article{arxiv.1601.03907,
  title  = {A stabilized finite element formulation for liquid shells and its application to lipid bilayers},
  author = {Roger A. Sauer and Thang X. Duong and Kranthi K. Mandadapu and David J. Steigmann},
  journal= {arXiv preprint arXiv:1601.03907},
  year   = {2017}
}

Comments

Corrected typo in axes of Fig.3, results unchanged

R2 v1 2026-06-22T12:30:05.271Z