Shear localization and wall friction in confined dense granular flows

被引:20
|
作者
Artoni, Riccardo [1 ]
Soligo, Alberto [1 ]
Paul, Jean-Marc [1 ]
Richard, Patrick [1 ]
机构
[1] IFSTTAR, MAST, GPEM, F-44340 Bouguenais, France
关键词
complex fluids; granular media; HEAP; STRESS;
D O I
10.1017/jfm.2018.407
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
In this work, we discuss experiments and discrete element simulations of wall-bounded shear flows of slightly polydisperse spheres under gravity. Experiments were performed in an annular shear cell in which the bottom bumpy wall rotates at fixed velocity, while a pressure is applied at the top bumpy wall. The coaxial cylinders delimiting the flow are flat, frictional and transparent, allowing visualization of the flow. Velocity profiles were obtained by particle image velocimetry, and are characterized by an exponential profile, the decay length of which depends on the applied load, but not on the wall velocity. A force sensor was installed at different vertical positions on the outer sidewall in order to measure wall forces. The effective streamwise and transverse wall friction coefficients were thus estimated, showing wall friction weakening in creep zones. In order to better understand these results, contact dynamics simulations were carried out in a simplified configuration (Artoni & Richard, Phys. Rev. Lett., vol. 115 (15), 2015, 158001). In this case, profiting from the possibility of varying the particle-wall friction coefficient, different flow regimes were observed. In particular, shear can either be localized (1) at the bottom or (2) at the top of the shear cell, or (3) it can be quite evenly distributed in the vertical direction. Through an averaging technique that explicitly takes into account gradient effects (Artoni & Richard, Phys. Rev. E, vol. 91 (3), 2015, 032202), relevant, coarse-grained, continuum fields (solid fraction, velocity, stresses, velocity fluctuations) were obtained. They allow a discussion of the relevance of velocity fluctuations (i.e. granular temperature) for describing non-locality in granular flow. The case of solid-like fluctuations is also addressed. Finally, a simplified stress analysis is devoted to explain the emergence of complex shear localization patterns by the heterogeneity of effective bulk friction, which is due to the joint effect of gravity and wall friction.
引用
收藏
页码:395 / 418
页数:24
相关论文
共 50 条
  • [41] Modelling dense granular flows
    Harris, David
    Materials Science Forum, 2009, 623 : 49 - 59
  • [42] Flows of dense granular media
    Forterre, Yoel
    Pouliquen, Olivier
    ANNUAL REVIEW OF FLUID MECHANICS, 2008, 40 (1-24) : 1 - 24
  • [43] Dense shallow granular flows
    Kumaran, V.
    JOURNAL OF FLUID MECHANICS, 2014, 756 : 555 - 599
  • [44] On continuum modelling of dense inelastic granular flows of relevance for high shear granulation
    Abrahamsson, P. J.
    Sasic, S.
    Rasmuson, A.
    POWDER TECHNOLOGY, 2016, 294 : 323 - 329
  • [45] Granular mass flows and Coulomb's friction in shear cell experiments: Implications for geophysical flows
    Cagnoli, B
    Manga, M
    JOURNAL OF GEOPHYSICAL RESEARCH-EARTH SURFACE, 2004, 109 (F4)
  • [46] Some remarks on the rheology of dense granular flows: A Commentary on "On dense granular flows" by GDR MiDi
    Rajchenbach, J
    EUROPEAN PHYSICAL JOURNAL E, 2004, 14 (04): : 367 - 371
  • [47] Shear device for measurement of wall friction in designing granular moving bed filters
    Smid, J
    Hsiau, SS
    Tu, WD
    Lin, CH
    Ma, SM
    ADVANCED POWDER TECHNOLOGY, 2006, 17 (01) : 49 - 67
  • [48] DEM simulation of dense granular flows in a vane shear cell: Kinematics and rheological laws
    Qi, Fenglei
    de Richter, Sebastien Kiesgen
    Jenny, Mathieu
    Peters, Bernhard
    POWDER TECHNOLOGY, 2020, 366 : 722 - 735
  • [49] Velocity correlations in dense granular shear flows: Effects on energy dissipation and normal stress
    Mitarai, Namiko
    Nakanishi, Hiizu
    PHYSICAL REVIEW E, 2007, 75 (03):
  • [50] Shear instabilities in granular flows
    David J. Goldfarb
    Benjamin J. Glasser
    Troy Shinbrot
    Nature, 2002, 415 : 302 - 305