Steady flow and evaporation of a volatile liquid in a wedge

被引:29
|
作者
Markos, Mulugeta [1 ]
Ajaev, Vladimir S.
Homsy, G. M.
机构
[1] So Methodist Univ, Dept Math, Dallas, TX 75275 USA
[2] Univ Calif Santa Barbara, Dept Mech Engn, Santa Barbara, CA 93106 USA
基金
美国国家科学基金会;
关键词
D O I
10.1063/1.2347529
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
We develop a lubrication-type model of a liquid flow in a wedge in the limit of small capillary numbers and negligible gravity. Liquid flows under the action of capillary pressure gradients and thermocapillary stresses, and evaporates due to heating from the solid walls on which a constant axial temperature gradient is imposed. Steady vapor-liquid interface shapes are found for different wedge angles and material properties of the liquid. In the limit of weak evaporation (e.g., in the adiabatic region of a heat pipe) and negligible Marangoni number, the flow rate is the same in all cross sections and can be controlled by changing the wedge angle. We find the wedge angle that results in the maximum value of the flow rate for a given contact angle. For finite evaporation rates, both the flow rate and the amount of liquid in each cross section along the wedge decrease until the point of dry-out is reached. The location of the dry-out point is studied as a function of evaporation conditions. Somewhat counterintuitively, we find that the dry-out point shifts toward the region of higher temperature as evaporation intensity is increased. The effect of thermocapillary stresses on the vapor-liquid interface shape is also investigated in the limit of negligible evaporation. Since thermocapillarity generally opposes the capillary flow, it leads to shorter wetted lengths. The implications of the results for design and optimization of micro heat pipes are discussed. (c) 2006 American Institute of Physics.
引用
收藏
页数:12
相关论文
共 50 条
  • [31] Evaporation of Liquid Semi-Volatile Aerosols Collected on Fibrous Filters
    Sutter, Benjamin
    Bemer, Denis
    Appert-Collin, Jean-Christophe
    Thomas, Dominique
    Midoux, Noel
    AEROSOL SCIENCE AND TECHNOLOGY, 2010, 44 (05) : 395 - 404
  • [32] STEADY FLOW OF INCOMPRESSIBLE VOLATILE FLUID UNDER ACTION OF RADIATION
    FORSTE, J
    ZEITSCHRIFT FUR ANGEWANDTE MATHEMATIK UND MECHANIK, 1977, 57 (04): : 265 - 267
  • [33] Effects of evaporation/condensation on spreading and contact angle of a volatile liquid drop
    Zhang, NL
    Chao, DF
    HEAT TRANSFER SCIENCE AND TECHNOLOGY 2000, 2000, : 367 - 372
  • [34] Computer Simulations of Quasi-Steady Evaporation of Sessile Liquid Droplets
    Semenov, S.
    Starov, V.
    Rubio, R. G.
    Velarde, M. G.
    TRENDS IN COLLOID AND INTERFACE SCIENCE XXIV, 2011, 138 : 115 - 120
  • [35] Evaporation and viscous flow structure near a contact line pinned at a solid wedge
    Kubochkin, Nikolai
    Gambaryan-Roisman, Tatiana
    Ajaev, Vladimir S.
    PHYSICAL REVIEW FLUIDS, 2024, 9 (09):
  • [36] On the discontinuous flow of liquid past a wedge of small angle
    Morion, WB
    PHILOSOPHICAL MAGAZINE, 1924, 48 (285): : 464 - 476
  • [37] Direct-contact heat transfer of a single volatile liquid drop evaporation in an immiscible liquid
    Mahood, Hameed Balassim
    DESALINATION, 2008, 222 (1-3) : 656 - 665
  • [38] THE EVAPORATION OF VOLATILE LIQUIDS
    KAWAMURA, PI
    MACKAY, D
    JOURNAL OF HAZARDOUS MATERIALS, 1987, 15 (03) : 343 - 364
  • [39] HIGH REYNOLDS NUMBER STEADY SEPARATED FLOW PAST A WEDGE OF NEGATIVE ANGLE
    KLEMP, JB
    ACRIVOS, A
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1971, 16 (11): : 1317 - &
  • [40] Effect of temperature on the convection flow within the liquid evaporation into the gas flow
    Kreta, A.
    Lyulin, Y.
    Kabov, O.
    ALL RUSSIAN CONFERENCE WITH THE SCHOOL FOR YOUNG SCIENTISTS THERMOPHYSICS AND PHYSICAL HYDRODYNAMICS - 2016, 2016, 754 (1-10):