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    Particle Scale Anisotropy Controls Bulk Properties in Sheared Granular Materials

    Carmen L. Lee1, Ephraim Bililign1,2, Emilien Azéma3,4,5, and Karen E. Daniels1

    Phys. Rev. Lett. 135, 108201 – Published 2 September, 2025

    DOI: https://doi.org/10.1103/gp8t-v82n

    Abstract

    The bulk dynamics of dense granular materials arise through a combination of particle-scale and mesoscale effects. Theoretical and numerical studies have shown that collective effects are created by particle-scale anisotropic structures such as grain connectivity, force transmission, and frictional mobilization, all of which influence bulk properties like bulk friction and the stress tensor through the stress-force-fabric (SFF) relationship. To date, establishing the relevance of these effects to laboratory systems has remained elusive due to the challenge of measuring both normal and frictional contact forces at the particle scale. In this study, we perform experiments on a sheared photoelastic granular system in a quasi-2D annular cell. During these experiments, we measure particle locations, contacts, and normal and frictional forces vectors during loading. We reconstruct the angular distributions of the contact and force vectors, and extract the corresponding emergent anisotropies for each of these metrics. Finally, we show for the first time in an experimental system that the SFF relation quantitatively predicts the relationship between particle scale anisotropies, the stress tensor components, and the bulk friction coefficient, capturing even transient behaviors—closing the gap between experimental measurements and prior theoretical and numerical models.

    Physics Subject Headings (PhySH)

    See Also

    Loading-dependent microscale measures control bulk properties in granular material: An experimental test of the stress-force-fabric relation

    Carmen L. Lee, Ephraim Bililign, Emilien Azéma, and Karen E. Daniels
    Phys. Rev. E 112, 035401 (2025)

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