Shear thickening behavior in dense repulsive and attractive suspensions of hard spheres

被引:8
|
作者
Rathee, Vikram [1 ]
Monti, Alessandro [2 ]
Rosti, Marco E. [2 ]
Shen, Amy Q. [1 ]
机构
[1] Okinawa Inst Sci & Technol Grad Univ, Microbionanofluid Unit, Onna, Okinawa 9040495, Japan
[2] Okinawa Inst Sci & Technol Grad Univ, Complex Fluids & Flows Unit, Onna, Okinawa 9040495, Japan
关键词
YIELD-STRESS; COLLOIDAL GELS; PARTICLE-SIZE; STEADY SHEAR; RHEOLOGY; MICROSTRUCTURE; AGGREGATION; TRANSITION; DILATANCY; DYNAMICS;
D O I
10.1039/d1sm00971k
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Shear thickening in stable dense colloidal suspensions is a reversible phenomenon and no hysteresis is observed in the flow curve measurements. However, a reduction in the stability of colloids promotes particle aggregation and introduces a time dependent rheological response. In this work, by using a model colloidal system of hard spherical silica particles (average diameter of 415 nm) with varying particle volume fractions 0.2 <= phi <= 0.56, we study the effect of particle stability on the hysteresis of the shear thickening behavior of these suspensions. The particle stability is manipulated by adding a simple monovalent salt (sodium chloride) in the silica suspension with varying concentrations alpha is an element of [0,0.5] M. For repulsive and weakly attractive suspensions, the flow behavior is history independent and the shear thickening behavior does not exhibit hysteresis. However, significant hysteresis is observed in rheological measurements for strongly attractive suspensions, with shear history playing a critical role due to the dynamic nature of particle clusters, resulting in time dependent hysteresis behavior. By performing numerical simulations, we find that this hysteresis behavior arises due to the competition among shear, electrostatic repulsive, van der Waals attractive, and frictional contact forces. The critical shear stress (i.e., the onset of shear thickening) decreases with increasing salt concentrations, which can be captured by a scaling relationship based on the force balance between particle-particle contact force and electrostatic repulsive force. Our combined experimental and simulation results imply the formation of particle contacts in our sheared suspensions.
引用
收藏
页码:8047 / 8058
页数:13
相关论文
共 50 条
  • [1] Simulation of shear thickening in attractive colloidal suspensions
    Pednekar, Sidhant
    Chun, Jaehun
    Morris, Jeffrey F.
    SOFT MATTER, 2017, 13 (09) : 1773 - 1779
  • [2] Generality of shear thickening in dense suspensions
    Brown E.
    Forman N.A.
    Orellana C.S.
    Zhang H.
    Maynor B.W.
    Betts D.E.
    Desimone J.M.
    Jaeger H.M.
    Nature Materials, 2010, 9 (3) : 220 - 224
  • [3] Shear thickening in dense bidisperse suspensions
    Malbranche, Nelya
    Chakraborty, Bulbul
    Morris, Jeffrey F.
    JOURNAL OF RHEOLOGY, 2023, 67 (01) : 91 - 104
  • [4] Generality of shear thickening in dense suspensions
    Brown, Eric
    Forman, Nicole A.
    Orellana, Carlos S.
    Zhang, Hanjun
    Maynor, Benjamin W.
    Betts, Douglas E.
    DeSimone, Joseph M.
    Jaeger, Heinrich M.
    NATURE MATERIALS, 2010, 9 (03) : 220 - 224
  • [5] Effect of attractions on shear thickening in dense suspensions
    Gopalakrishnan, V
    Zukoski, CF
    JOURNAL OF RHEOLOGY, 2004, 48 (06) : 1321 - 1344
  • [6] Shear-thickening of dense bidispersed suspensions
    Alessandro Monti
    Marco Edoardo Rosti
    Meccanica, 2023, 58 : 727 - 737
  • [7] Shear thickening of dense suspensions: The role of friction
    Sivadasan, Vishnu
    Lorenz, Eric
    Hoekstra, Alfons G.
    Bonn, Daniel
    PHYSICS OF FLUIDS, 2019, 31 (10)
  • [8] Shear-thickening of dense bidispersed suspensions
    Monti, Alessandro
    Rosti, Marco Edoardo
    MECCANICA, 2023, 58 (04) : 727 - 737
  • [9] Shear Thickening and Jamming of Dense Suspensions: The "Roll" of Friction
    Singh, Abhinendra
    Ness, Christopher
    Seto, Ryohei
    de Pablo, Juan J.
    Jaeger, Heinrich M.
    PHYSICAL REVIEW LETTERS, 2020, 124 (24)
  • [10] Shear thickening in dense suspensions driven by particle interlocking
    Blair, Matthew
    Ness, Christopher
    JOURNAL OF FLUID MECHANICS, 2022, 948