Large-amplitude oscillatory shear rheology of dilute active suspensions

被引:29
|
作者
Bozorgi, Yaser [1 ]
Underhill, Patrick T. [1 ]
机构
[1] Rensselaer Polytech Inst, HP Isermann Dept Chem & Biol Engn, Troy, NY 12180 USA
基金
美国国家科学基金会;
关键词
Large-amplitude oscillatory shear; Swimming microorganisms; Colloidal suspensions; Creeping flow; BROWNIAN ROTATIONS; PARTICLES; VISCOELASTICITY; MOTION; FLUID; FLOW;
D O I
10.1007/s00397-014-0806-y
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Suspensions of swimming microorganisms are a class of active suspensions that show an interesting rheological response in steady shear flow. In particular, the particle contribution to the viscosity can be negative, which has been calculated from models and measured experimentally. In this article, the material functions in large-amplitude oscillatory shear (LAOS) flow are calculated. In addition to the linear material functions, the nonlinearities are quantified analytically using the intrinsic nonlinear material functions. The particle contribution to both the storage and loss modulus can be negative. Since the suspending fluid is assumed Newtonian (and so has no storage modulus), the overall storage modulus can be negative. The intrinsic nonlinearities also show differences between passive and active suspensions. At small frequency, the active swimming can change the sign of the material functions. However, the viscous material functions are independent of the swimming motion at a very large frequency. The changes in sign of the material functions and the unique dependence on frequency may act as a rheological fingerprint of suspensions of swimming organisms.
引用
收藏
页码:899 / 909
页数:11
相关论文
共 50 条
  • [41] Power series for shear stress of polymeric liquid in large-amplitude oscillatory shear flow
    Pongthep Poungthong
    Chaimongkol Saengow
    Alan Jeffrey Giacomin
    Chanyut Kolitawong
    Korea-Australia Rheology Journal, 2018, 30 : 169 - 178
  • [42] Large amplitude oscillatory shear (LAOS) rheology of nixtamalized corn masa
    Alvarez-Ramirez, J.
    Escarela-Perez, R.
    Vernon-Carter, E. J.
    Carrillo-Navas, H.
    JOURNAL OF CEREAL SCIENCE, 2019, 88 : 31 - 37
  • [43] Response of concentrated suspensions under large amplitude oscillatory shear flow
    Narumi, T
    See, H
    Suzuki, A
    Hasegawa, T
    JOURNAL OF RHEOLOGY, 2005, 49 (01) : 71 - 85
  • [44] Collective nonaffine displacements in amorphous materials during large-amplitude oscillatory shear
    Priezjev, Nikolai V.
    PHYSICAL REVIEW E, 2017, 95 (02)
  • [45] THE TRANSITION TO QUASI-PERIODICITY FOR MOLTEN PLASTICS IN LARGE-AMPLITUDE OSCILLATORY SHEAR
    ADRIAN, DW
    GIACOMIN, AJ
    JOURNAL OF ENGINEERING MATERIALS AND TECHNOLOGY-TRANSACTIONS OF THE ASME, 1994, 116 (04): : 446 - 450
  • [46] Flow of concentrated solutions of starlike micelles under large-amplitude oscillatory shear
    Poulos, Andreas S.
    Stellbrink, Joerg
    Petekidis, George
    RHEOLOGICA ACTA, 2013, 52 (8-9) : 785 - 800
  • [47] Pade approximant for normal stress differences in large-amplitude oscillatory shear flow
    Poungthong, P.
    Saengow, C.
    Giacomin, A. J.
    Kolitawong, C.
    Merger, D.
    Wilhelm, M.
    PHYSICS OF FLUIDS, 2018, 30 (04)
  • [48] STRUCTURAL NETWORK THEORY FOR A FILLED POLYMER MELT IN LARGE-AMPLITUDE OSCILLATORY SHEAR
    JEYASEELAN, RS
    GIACOMIN, AJ
    POLYMER GELS AND NETWORKS, 1995, 3 (02) : 117 - 133
  • [49] Determination of linearity limit of bitumen and mastic using large-amplitude oscillatory shear
    Sanchana, I. C.
    Sandeep, I. J. S.
    Divya, P. S.
    Padmarekha, A.
    Krishnan, J. Murali
    INTERNATIONAL JOURNAL OF PAVEMENT ENGINEERING, 2023, 24 (02)
  • [50] Flow of concentrated solutions of starlike micelles under large-amplitude oscillatory shear
    Andreas S. Poulos
    Jörg Stellbrink
    George Petekidis
    Rheologica Acta, 2013, 52 : 785 - 800