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Emergent Strain-Stiffening in Interlocked Granular Chains

Soft Condensed Matter 2018-04-02 v2 Materials Science Statistical Mechanics Chemical Physics Classical Physics

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 FF with the indentation depth zz, and with the square root of the number N\mathcal{N} 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: logFμNΦ11/8z/b\log F \sim \mu \sqrt{\mathcal{N}} \Phi^{11/8}z/ b , where μ\mu is the friction coefficient between two elementary beads, bb is their size, and Φ\Phi 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.

Keywords

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}
}
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