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Vibration-induced Liquefaction of Granular Suspensions

Identifieur interne : 000C09 ( Hal/Corpus ); précédent : 000C08; suivant : 000C10

Vibration-induced Liquefaction of Granular Suspensions

Auteurs : Caroline Hanotin ; Sébastien Kiesgen De Richter ; Philippe Marchal ; Laurent J. Michot ; Christophe Baravian

Source :

RBID : Hal:hal-00778481

English descriptors

Abstract

We investigate the mechanical behavior of granular suspensions subjected to coupled vibrations and shear. At high shear stress, whatever the mechanical vibration energy and bead size, the system behaves like a homogeneous suspension of hard spheres. At low shear stress, in addition to a dependence on bead size, vibration energy drastically influences the viscosity of the material that can decrease by more than 2 orders of magnitude. All experiments can be rationalized by introducing a hydrodynamical Peclet number defined as the ratio between the lubrication stress induced by vibrations and granular pressure. The behavior of vibrated wet and dry granular materials can then be unified by assimilating the Hookean stress in dry media to the lubrication stress in suspensions.

Url:
DOI: 10.1103/PhysRevLett.108.198301

Links to Exploration step

Hal:hal-00778481

Le document en format XML

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<div type="abstract" xml:lang="en">We investigate the mechanical behavior of granular suspensions subjected to coupled vibrations and shear. At high shear stress, whatever the mechanical vibration energy and bead size, the system behaves like a homogeneous suspension of hard spheres. At low shear stress, in addition to a dependence on bead size, vibration energy drastically influences the viscosity of the material that can decrease by more than 2 orders of magnitude. All experiments can be rationalized by introducing a hydrodynamical Peclet number defined as the ratio between the lubrication stress induced by vibrations and granular pressure. The behavior of vibrated wet and dry granular materials can then be unified by assimilating the Hookean stress in dry media to the lubrication stress in suspensions.</div>
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<forename type="first">Caroline</forename>
<surname>Hanotin</surname>
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<email>caroline.hanotin@univ-lorraine.fr</email>
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<forename type="first">Sébastien</forename>
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<forename type="first">Philippe</forename>
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<forename type="first">Laurent J.</forename>
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<forename type="first">Christophe</forename>
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<forename type="first">Laurent J.</forename>
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<abstract xml:lang="en">We investigate the mechanical behavior of granular suspensions subjected to coupled vibrations and shear. At high shear stress, whatever the mechanical vibration energy and bead size, the system behaves like a homogeneous suspension of hard spheres. At low shear stress, in addition to a dependence on bead size, vibration energy drastically influences the viscosity of the material that can decrease by more than 2 orders of magnitude. All experiments can be rationalized by introducing a hydrodynamical Peclet number defined as the ratio between the lubrication stress induced by vibrations and granular pressure. The behavior of vibrated wet and dry granular materials can then be unified by assimilating the Hookean stress in dry media to the lubrication stress in suspensions.</abstract>
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