The thermocapillary migration of gas bubbles in a viscoelastic fluid

被引:0
|
作者
J. Jiménez-Fernández
A. Crespo
机构
[1] E.T.S.I. Industriales,Dpto. Ingeniería Energética y Fluidomecánica
来源
关键词
Viscoelastic Fluid; Recirculation Region; Terminal Velocity; Microgravity Condition; Marangoni Number;
D O I
暂无
中图分类号
学科分类号
摘要
The steady thermocapillary flow of a spherical bubble in a linear temperature field is analyzed by considering that the continuous phase is a weak viscoelastic fluid. Convective heat and momentum transfers are neglected but the action of gravity is taken into account. The problem is formulated for non shear thinning elastic fluids which may be described by the Olroyd-B constitutive equation. The analysis is restricted to weak elastic fluids, an assumption that in dimensionless terms is equivalent to assuming that the Weissenberg number Wi=λ/tc where λ is the relaxation time of the fluid and tc the scale time of the flow, is small compared to unity. Thus, the corresponding boundary value problem is solved following a perturbation procedure by regular expansions of the kinematic and stress variables in powers of Wi (retarded motion expansion). Velocity fields as well as the force exerted by the fluid upon the bubble are determined at second order in Wi. It is shown that when the motion is driven by buoyancy in the presence of surface tension forces of a comparable order of magnitude, the velocity fields are strongly affected. Unlike the newtonian case where the recirculation region generated is symmetrical, in a non-newtonian fluid elastic effects produce a breaking of symmetry, so that this region is enhanced and shifted in the downstream direction. The analysis also provides the second order correction to both the terminal velocity and the temperature gradient needed to hold the bubble at rest.
引用
收藏
相关论文
共 50 条
  • [21] Thermocapillary and not thermocapillary convection around non-condensable gas bubbles
    M. I. Lamas
    J. M. Saiz Jabardo
    A. Arce
    Journal of the Brazilian Society of Mechanical Sciences and Engineering, 2013, 35 : 493 - 503
  • [22] Thermocapillary and not thermocapillary convection around non-condensable gas bubbles
    Lamas, M. I.
    Saiz Jabardo, J. M.
    Arce, A.
    JOURNAL OF THE BRAZILIAN SOCIETY OF MECHANICAL SCIENCES AND ENGINEERING, 2013, 35 (04) : 493 - 503
  • [23] Thermocapillary migration of long bubbles in cylindrical capillary tubes
    Mazouchi, A
    Homsy, GM
    PHYSICS OF FLUIDS, 2000, 12 (03) : 542 - 549
  • [24] Planar thermocapillary migration of two bubbles in microgravity environment
    Sun, R
    Hu, WR
    PHYSICS OF FLUIDS, 2003, 15 (10) : 3015 - 3027
  • [25] Thermocapillary migration of a fluid compound droplet
    Vinh T Nguyen
    Truong V Vu
    Phan H Nguyen
    Nang X Ho
    Binh D Pham
    Hoe D Nguyen
    Hung V Vu
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2021, 35 (09) : 4033 - 4044
  • [26] Thermocapillary mobility of bubbles and electrophoretic motion of particles in a fluid
    Felderhof, BU
    JOURNAL OF ENGINEERING MATHEMATICS, 1996, 30 (1-2) : 299 - 305
  • [27] Thermocapillary migration of a fluid compound droplet
    Vinh T. Nguyen
    Truong V. Vu
    Phan H. Nguyen
    Nang X. Ho
    Binh D. Pham
    Hoe D. Nguyen
    Hung V. Vu
    Journal of Mechanical Science and Technology, 2021, 35 : 4033 - 4044
  • [28] Numerical and experimental study of the heat transfer and fluid flow by thermocapillary convection around gas bubbles
    Betz, J
    Straub, J
    HEAT AND MASS TRANSFER, 2001, 37 (2-3) : 215 - 227
  • [29] Numerical and experimental study of the heat transfer and fluid flow by thermocapillary convection around gas bubbles
    J. Betz
    J. Straub
    Heat and Mass Transfer, 2001, 37 : 215 - 227
  • [30] Dynamics of Gas Bubbles Encapsulated by a Viscoelastic Fluid Shell Under Acoustic Fields
    Jimenez-Fernandez, J.
    ACTA ACUSTICA UNITED WITH ACUSTICA, 2014, 100 (06) : 1024 - 1035