Non-isothermal rarefied gas flow in microtube with constant wall temperature

被引:3
|
作者
Guranov, Iva [1 ]
Milicev, Snezana [1 ]
Stevanovic, Nevena [1 ]
机构
[1] Univ Belgrade, Fac Mech Engn, Kraljice Marije 16, Belgrade 11000, Serbia
关键词
Microtube; rarefied gas; slip flow; constant wall temperature; analytical solution; HEAT-TRANSFER; SLIP-FLOW; MICROCHANNEL; TUBE;
D O I
10.1177/16878140211065147
中图分类号
O414.1 [热力学];
学科分类号
摘要
In this paper, pressure-driven gas flow through a microtube with constant wall temperature is considered. The ratio of the molecular mean free path and the diameter of the microtube cannot be negligible. Therefore, the gas rarefaction is taken into account. A solution is obtained for subsonic as well as slip and continuum gas flow. Velocity, pressure, and temperature fields are analytically attained by macroscopic approach, using continuity, Navier-Stokes, and energy equations, with the first order boundary conditions for velocity and temperature. Characteristic variables are expressed in the form of perturbation series. The first approximation stands for solution to the continuum flow. The second one reveals the effects of gas rarefaction, inertia, and dissipation. Solutions for compressible and incompressible gas flow are presented and compared with the available results from the literature. A good matching has been achieved. This enables using proposed method for solving other microtube gas flows, which are common in various fields of engineering, biomedicine, pharmacy, etc. The main contribution of this paper is the integral treatment of several important effects such as rarefaction, compressibility, temperature field variability, inertia, and viscous dissipation in the presented solutions. Since the solutions are analytical, they are useful and easily applicable.
引用
收藏
页数:9
相关论文
共 50 条
  • [21] NON-ISOTHERMAL QUASISTATIONARY GAS-FLOW IN TUBES
    BRUK, VA
    [J]. HIGH TEMPERATURE, 1985, 23 (02) : 262 - 268
  • [22] Non-isothermal gas flow through rectangular microchannels
    Sharipov, F
    [J]. JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 1999, 9 (04) : 394 - 401
  • [23] Rarefied Pure Gas Transport in Non-isothermal Porous Media: Validation and Tests of the Model
    Gérard L. Vignoles
    Pierre Charrier
    Christophe Preux
    Bruno Dubroca
    [J]. Transport in Porous Media, 2008, 75 : 295 - 317
  • [24] Rarefied Pure Gas Transport in Non-isothermal Porous Media: Validation and Tests of the Model
    Vignoles, Gerard L.
    Charrier, Pierre
    Preux, Christophe
    Dubroca, Bruno
    [J]. TRANSPORT IN POROUS MEDIA, 2008, 75 (03) : 295 - 317
  • [25] A Constant Wall Temperature Microbearing Gas Flow
    Stevanovic, Nevena D.
    Milicev, Snezana S.
    [J]. FME TRANSACTIONS, 2010, 38 (02): : 71 - 77
  • [26] NON-LINEAR SATURATION OF SMBS IN A RAREFIED NON-ISOTHERMAL PLASMA
    SILIN, VP
    TIKHONCHUK, VT
    [J]. JETP LETTERS, 1981, 34 (07) : 365 - 368
  • [27] Apparent permeability in tight gas reservoirs combining rarefied gas flow in a microtube
    Zheng, Lingli
    Chen, Muyao
    Li, Tao
    He, Jiahuan
    Li, Yongming
    Xiao, Wenlian
    [J]. FRONTIERS IN EARTH SCIENCE, 2023, 11
  • [28] Non-isothermal Gas Flow During Carbon Sequestration in Coalbeds
    Chen, Min
    Hosking, Lee J.
    Thomas, Hywel R.
    [J]. PROCEEDINGS OF THE 8TH INTERNATIONAL CONGRESS ON ENVIRONMENTAL GEOTECHNICS, VOL 3: TOWARDS A SUSTAINABLE GEOENVIRONMENT, 2019, : 113 - 120
  • [29] Modeling of non-isothermal gas flow through a heterogeneous medium
    Buikis, A
    Ulanova, N
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1996, 39 (08) : 1743 - 1748
  • [30] NON-ISOTHERMAL CATALYTIC WALL REACTIONS
    KINGHELE, JA
    THORNHAM, SA
    [J]. JOURNAL OF ENGINEERING MATHEMATICS, 1983, 17 (04) : 345 - 353