Microrheology to probe non-local effects in dense granular flows

A granular material is observed to flow under the Coulomb yield criterion as soon as this criterion is satisfied in a remote but contiguous region of space. We investigate this non-local effect using discrete element simulations, in a geometry similar, in spirit, to the experiment of Reddy et al. (P...

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Published inEurophysics letters Vol. 109; no. 2; pp. 24002 - p1-24002-p6
Main Authors Bouzid, Mehdi, Trulsson, Martin, Claudin, Philippe, Clément, Eric, Andreotti, Bruno
Format Journal Article
LanguageEnglish
Published Les Ulis EDP Sciences, IOP Publishing and Società Italiana di Fisica 01.01.2015
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Abstract A granular material is observed to flow under the Coulomb yield criterion as soon as this criterion is satisfied in a remote but contiguous region of space. We investigate this non-local effect using discrete element simulations, in a geometry similar, in spirit, to the experiment of Reddy et al. (Phys. Rev. Lett., 106 (2011) 108301): a micro-rheometer is introduced to determine the influence of a distant shear band on the local rheological behaviour. The numerical simulations recover the dominant features of this experiment: the local shear rate is proportional to that in the shear band and decreases (roughly) exponentially with the distance to the yield conditions. The numerical results are in quantitative agreement with the predictions of the non-local rheology proposed by the present authors (Phys. Rev. Lett., 111 (2013) 238301) and derived from a gradient expansion of the rheology . The consequences of these findings for the dynamical mechanisms controlling non-locality are finally discussed.
AbstractList A granular material is observed to flow under the Coulomb yield criterion as soon as this criterion is satisfied in a remote but contiguous region of space. We investigate this non-local effect using discrete element simulations, in a geometry similar, in spirit, to the experiment of Reddy et al. (Phys. Rev. Lett., 106 (2011) 108301): a micro-rheometer is introduced to determine the influence of a distant shear band on the local rheological behaviour. The numerical simulations recover the dominant features of this experiment: the local shear rate is proportional to that in the shear band and decreases (roughly) exponentially with the distance to the yield conditions. The numerical results are in quantitative agreement with the predictions of the non-local rheology proposed by the present authors (Phys. Rev. Lett., 111 (2013) 238301) and derived from a gradient expansion of the rheology mu [I]. The consequences of these findings for the dynamical mechanisms controlling non-locality are finally discussed.
A granular material is observed to flow under the Coulomb yield criterion as soon as this criterion is satisfied in a remote but contiguous region of space. We investigate this non-local effect using discrete element simulations, in a geometry similar, in spirit, to the experiment of Reddy et al. (Phys. Rev. Lett., 106 (2011) 108301): a micro-rheometer is introduced to determine the influence of a distant shear band on the local rheological behaviour. The numerical simulations recover the dominant features of this experiment: the local shear rate is proportional to that in the shear band and decreases (roughly) exponentially with the distance to the yield conditions. The numerical results are in quantitative agreement with the predictions of the non-local rheology proposed by the present authors (Phys. Rev. Lett., 111 (2013) 238301) and derived from a gradient expansion of the rheology . The consequences of these findings for the dynamical mechanisms controlling non-locality are finally discussed.
A granular material is observed to flow under the Coulomb yield criterion as soon as this criterion is satisfied in a remote but contiguous region of space. We investigate this non-local effect using discrete element simulations, in a geometry similar, in spirit, to the experiment of Reddy et al. [PRL 106, 108301 (2011)]: a micro-rheometer is introduced to determine the influence of a distant shear band on the local rheological behaviour. The numerical simulations recover the dominant features of this experiment: the local shear rate is proportional to that in the shear band and decreases (roughly) exponentially with the distance to the yield conditions. The numerical results are in quantitative agreement with the predictions of the non-local rheology proposed by the present authors [PRL 111, 238301 (2013)] and derived from a gradient expansion of the rheology \mu[I]. The consequences of these findings for the dynamical mechanisms controlling non-locality are finally discussed.
Author Bouzid, Mehdi
Andreotti, Bruno
Clément, Eric
Claudin, Philippe
Trulsson, Martin
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Snippet A granular material is observed to flow under the Coulomb yield criterion as soon as this criterion is satisfied in a remote but contiguous region of space. We...
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SubjectTerms 45.70.-n
47.57.Gc
83.80.Fg
Computer simulation
Condensed Matter
Coulomb friction
Criteria
Edge dislocations
Granular materials
Mathematical models
Physics
Rheological properties
Rheology
Shear bands
Shear rate
Slip bands
Soft Condensed Matter
Space probes
Yield criteria
Title Microrheology to probe non-local effects in dense granular flows
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