Emergent Strain-Stiffening in Interlocked Granular Chains
Abstract
Granular chain packings exhibit a striking emergent strain-stiffening behavior despite the individual looseness of the constitutive chains. Using indentation experiments on such assemblies, we measure an exponential increase in the collective resistance force with the indentation depth , and with the square root of the number of beads per chain. These two observations are respectively reminiscent of the self-amplification of friction in a capstan or in interleaved books, as well as the physics of polymers. The experimental data are well captured by a novel model based on these two ingredients. Specifically, the resistance force is found to vary according to the universal relation: , where is the friction coefficient between two elementary beads, is their size, and is the volume fraction of chain beads when semi-diluted in a surrounding medium of unconnected beads. Our study suggests that theories normally confined to the realm of polymer physics at a molecular level can be used to explain phenomena at a macroscopic level. This class of systems enables the study of friction in complex assemblies, with practical implications for the design of new materials, the textile industry, and biology.
Cite
@article{arxiv.1707.08547,
title = {Emergent Strain-Stiffening in Interlocked Granular Chains},
author = {Denis Dumont and Maurine Houze and Paul Rambach and Thomas Salez and Sylvain Patinet and Pascal Damman},
journal= {arXiv preprint arXiv:1707.08547},
year = {2018}
}