Title
Subdivision Shell Elements With Anisotropic Growth
Abstract
A thin shell finite element approach based on Loop's subdivision surfaces is proposed, capable of dealing with large deformations and anisotropic growth. To this end, the Kirchhoff-Love theory of thin shells is derived and extended to allow for arbitrary in-plane growth. The simplicity and computational efficiency of the subdivision thin shell elements is outstanding, which is demonstrated on a few standard loading benchmarks. With this powerful tool at hand, we demonstrate the broad range of possible applications by numerical solution of several growth scenarios, ranging from the uniform growth of a sphere, to boundary instabilities induced by large anisotropic growth. Finally, it is shown that the problem of a slowly and uniformly growing sheet confined in a fixed hollow sphere is equivalent to the inverse process where a sheet of fixed size is slowly crumpled in a shrinking hollow sphere in the frictionless, quasistatic, elastic limit. Copyright (C) 2013 John Wiley & Sons, Ltd.
Year
DOI
Venue
2012
10.1002/nme.4536
INTERNATIONAL JOURNAL FOR NUMERICAL METHODS IN ENGINEERING
Keywords
Field
DocType
structures, shells, elasticity, finite element methods, nonlinear dynamics
Inverse,Anisotropy,Nonlinear system,Mathematical analysis,Quasistatic process,Finite element method,Subdivision,Subdivision surface,Elasticity (economics),Mathematics
Journal
Volume
Issue
ISSN
95
9
0029-5981
Citations 
PageRank 
References 
2
0.64
3
Authors
5
Name
Order
Citations
PageRank
Roman Vetter121.32
N. Stoop231.74
Thomas Jenni320.64
Falk K. Wittel421.32
Hans J. Herrmann518617.58