arXiv · 2607.07981
A Generalized Mechanical Model for the Cycle Rank Dependence of Stretch at Break in Phantom Chain Star Polymer Networks
Abstract
A simple mechanical model was recently proposed to explain the universality of stretch at break ({\lambda}_b) as a function of cycle-rank density ({\xi}) in phantom-chain network simulations [J Non-Newtonian Fluid Mech., 349, 105620 (2026)]. Here, that model is reformulated as a series of the bottleneck strand and the surrounding network, yielding {\lambda}_b-1=({\lambda}_bs-1)[1+{\nu}_h/(1+c{\xi})]. In this formula, {\lambda}_bsis the stretch at break of the bottleneck strand, {\nu}_h is the number of stiff units in series along the rupture path, and c is a geometric constant for the parallel redundancy of the medium. Since c and {\nu}_hare difficult to separate over the examined range of {\xi}, c is fixed, and {\lambda}_bs and {\nu}_hare treated as fitting parameters. The formula is applied to phantom-chain simulations of networks with various conditions. In all cases, it reasonably captures the data, and the two parameters represent network characteristics.
Explore related subjects
Keep this discovery
Yuichi Masubuchi, Takato Ishida, Takashi Uneyama. 2026-07-08. A Generalized Mechanical Model for the Cycle Rank Dependence of Stretch at Break in Phantom Chain Star Polymer Networks. https://arxiv.org/abs/2607.07981
Cite the original work for its findings. Save a collection to share your selection of sources.