4.7 Article

Influence of boundary condition on the sound velocity in granular assembly: Spiral tube versus cylinder

期刊

ADVANCED POWDER TECHNOLOGY
卷 34, 期 1, 页码 -

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ELSEVIER
DOI: 10.1016/j.apt.2022.103887

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Complex confinement; Elastic wave velocity; Discrete element method

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In recent years, the properties of elastic wave propagation in granular assemblies have attracted significant attention. However, the influence of different confinements on sound velocity has been seldom investigated. This study proposes a method to determine the contact point between particles of varying shapes and complex boundaries, in order to explore the impact of particle shape and boundary on velocity. The simulations conducted in this study demonstrate that the anisotropy induced by the curved surface significantly affects the acoustic properties.
The properties of elastic wave propagation in granular assemblies have become a subject of immense interest in recent years, however, the influence of different confinements on the sound velocity is seldom investigated. This study provides a method to determine the contact point between spherical, superellipsoidal particles and complex boundaries, in order to investigate how the anisotropy induced by particle shape or boundary affects velocity. Taking cylinder and spiral tube confinements as examples, the falling process of spherical and super-ellipsoidal assemblies are simulated to verify the validation by the discrete element method (DEM). The convergence of the kinetic energy during the falling process and the equilibrium state with zero residual kinetic energy guarantees the stability and correctness. On the basis, elastic wave propagation of spherical and super-ellipsoidal systems in spiral tube and cylindrical confinements under different pressures are modelled, and sound velocities are calculated. The effective medium theory (EMT), granular solid hydrodynamics (GSH), and elastic stiffness are used to interpret the relationship between velocity and stress in cylindrical confinement. However, the results in the spiral tube deviate from EMT and GSH, which means the boundary affects velocity significantly. The difference of velocity between spiral tube and cylinder is qualitatively explained from the perspective of anisotropy of contact force distribution in the system. The simulation results show that anisotropy introduced by the curved surface affects the acoustic properties greatly. The method used for spiral boundary is also suitable for other complicated confinements.& COPY; 2022 The Society of Powder Technology Japan. Published by Elsevier B.V. and The Society of Powder Technology Japan. All rights reserved.

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