General rigidity principles for stable and minimal elastic curves
Abstract
For a wide class of curvature energy functionals defined for planar curves under the fixed-length constraint, we obtain optimal necessary conditions for global and local minimizers. Our results extend Maddocks' and Sachkov's rigidity principles for Euler's elastica by a new, unified and geometric approach. This in particular leads to complete classification of stable closed -elasticae for all and of stable pinned -elasticae for . Our proof is based on a simple but robust `cut-and-paste' trick without computing the energy nor its second variation, which works well for planar periodic curves but also extends to some non-periodic or non-planar cases. An analytically remarkable point is that our method is directly valid for the highly singular regime in which the second variation may not exist even for smooth variations.
Keywords
Cite
@article{arxiv.2301.08384,
title = {General rigidity principles for stable and minimal elastic curves},
author = {Tatsuya Miura and Kensuke Yoshizawa},
journal= {arXiv preprint arXiv:2301.08384},
year = {2024}
}
Comments
29 pages, 14 figures, final version