Hydrodynamic stress on small colloidal aggregates in shear flow using Stokesian dynamics

被引:32
|
作者
Seto, Ryohei [1 ]
Botet, Robert [2 ]
Briesen, Heiko [1 ]
机构
[1] Tech Univ Munich, Chair Proc Syst Engn, D-85350 Freising Weihenstephan, Germany
[2] Univ Paris 11, Phys Solides Lab, UMR8502, F-91405 Orsay, France
来源
PHYSICAL REVIEW E | 2011年 / 84卷 / 04期
关键词
TURBULENT CONDITIONS; FRICTION FORCES; BREAKUP; SIMULATION; DEPENDENCE; DRAG; DEFORMATION; CLUSTERS; BEHAVIOR; RUPTURE;
D O I
10.1103/PhysRevE.84.041405
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
The hydrodynamic properties of rigid fractal aggregates have been investigated by considering their motion in shear flow in the Stokesian dynamics approach. Due to the high fluid viscosity and small particle inertia of colloidal systems, the total force and torque applied to the aggregate reach equilibrium values in a short time. Obtaining equilibrating motions for a number of independent samples, one can extract the average hydrodynamic characteristics of the given fractal aggregates. Despite the geometry of these objects being essentially disordered, the average drag-force distributions for aggregates show symmetric patterns. Moreover, these distributions collapse on a single master curve, characteristic of the nature of the aggregates, provided the positions of the particles are rescaled with the geometric radius of gyration. This result can be used to explain the reason why the stress acting on an aggregate and moments of the forces acting on contact points between particles follow power-law behaviors with the aggregate size. Moreover, the values of the exponents can be explained. As a consequence, considering cohesive force typical for colloidal particles, we find that even aggregates smaller than a few dozen particles must experience restructuring when typical shear flow is applied.
引用
收藏
页数:11
相关论文
共 50 条
  • [21] Hydrodynamic Forces and Critical Stresses in Low-Density Aggregates under Shear Flow
    Vanni, Marco
    Gastaldi, Andrea
    LANGMUIR, 2011, 27 (21) : 12822 - 12833
  • [22] Brownian dynamics simulations of polyelectrolyte adsorption in shear flow with hydrodynamic interaction
    Hoda, Nazish
    Kumar, Satish
    JOURNAL OF CHEMICAL PHYSICS, 2007, 127 (23):
  • [23] Brownian dynamics simulations of ferromagnetic colloidal dispersions in a simple shear flow
    Satoh, A
    Chantrell, RW
    Coverdale, GN
    JOURNAL OF COLLOID AND INTERFACE SCIENCE, 1999, 209 (01) : 44 - 59
  • [24] Structural change and dynamics of colloidal gels under oscillatory shear flow
    Park, Jun Dong
    Ahn, Kyung Hyun
    Lee, Seung Jong
    SOFT MATTER, 2015, 11 (48) : 9262 - 9272
  • [25] Dynamics of shear-induced yielding and flow in dilute colloidal gels
    Rajaram, Bharath
    Mohraz, Ali
    PHYSICAL REVIEW E, 2011, 84 (01):
  • [26] Flow and hydrodynamic shear stress inside a printing needle during biofabrication
    Mueller, Sebastian J.
    Mirzahossein, Elham
    Iftekhar, Emil N.
    Baecher, Christian
    Schruefer, Stefan
    Schubert, Dirk W.
    Fabry, Ben
    Gekle, Stephan
    PLOS ONE, 2020, 15 (07):
  • [27] Depinning and heterogeneous dynamics of colloidal crystal layers under shear flow
    Gerloff, Sascha
    Klapp, Sabine H. L.
    PHYSICAL REVIEW E, 2016, 94 (06)
  • [28] Onset of flow in a confined colloidal glass under an imposed shear stress
    Chaudhuri, Pinaki
    Horbach, Juergen
    PHYSICAL REVIEW E, 2013, 88 (04):
  • [29] Relationship Between the Mobility of Aggregates and Fluid Penetration Depth Across a Range of Fractal Dimensions Using Stokesian Dynamics
    Amalaruban, Ashwin
    Kelkar, Narayani
    Krishan, Jayant
    Anand, S.
    Mayya, Y. S.
    Seth, Jyoti R.
    LANGMUIR, 2022, 38 (11) : 3422 - 3433
  • [30] Hydrodynamic correlations in shear flow: Multiparticle-collision-dynamics simulation study
    Varghese, Anoop
    Huang, Chien-Cheng
    Winkler, Roland G.
    Gompper, Gerhard
    PHYSICAL REVIEW E, 2015, 92 (05)