Experimental study of thermoconcentration convection in air-water and air-undecane mixtures

被引:0
作者
Somov, Sergey A. [1 ]
Ivanov, Aleksey S. [1 ]
机构
[1] Russian Acad Sci, Perm Fed Sci Res Ctr, Ural Branch, Inst Continuous Media Mech, Acad Korolev St 1, Perm 614068, Russia
关键词
NATURAL-CONVECTION; HEAT-TRANSFER; NUMERICAL-ANALYSIS; SQUARE ENCLOSURE; HUMID AIR; FLOW; EVAPORATION; HOT; MOISTURE; CAVITY;
D O I
10.1063/5.0222889
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
A quantitative experimental comparison was conducted between thermal convection in dry air and thermoconcentration convection in two gas mixtures: air-water vapor and air-undecane vapor, within the temperature range of 0-80 degrees C at normal atmospheric pressure. Convection in these mixtures is driven by temperature and concentration gradients of water (or undecane) vapor in the air. The stationary thermoconcentration convection is accompanied by continuous phase transitions of the fluids. The quantitative results of the experiments are represented in terms of the Nusselt number Nu and the effective Rayleigh number Ra-E, which is the sum of the thermal Ra-T and concentration Ra-C Rayleigh numbers. Quantitative laboratory measurements were performed using the thermocouple method and were supplemented with qualitative data from visual monitoring of transparent fluid flows using holographic interferometry. The cubic and quadratic temperature dependencies of RaCRaT-1 were determined experimentally for moist air and for the air-undecane vapor mixture, respectively. The significant role of moisture phase transitions in air convection is established. Neglecting these effects at 25 degrees C and using the ordinary Ra-T instead of actual Ra-E would result in an error exceeding 30%. At 38 degrees C, this error would increase to nearly 100%. At around 80 degrees C, thermoconcentration convection becomes almost entirely concentration-driven, as the high molecular disordered thermal motion is suppressed by the ordered convective motion generated by evaporation and condensation of water on the opposite heat exchangers of the convective cell.
引用
收藏
页数:12
相关论文
共 59 条
  • [1] Aleksandrov A. A., 1999, GSSSD 18799. Tables of Standard Reference Data. Ordinary Water Specific Volume and Enthalpy in the Temperature Range 0 to 1000 C and the Pressure Range 0.001 to 1000 MPa, P41
  • [2] Using fundamental equations of state for calculating the thermodynamic properties of normal undecane
    Aleksandrov I.S.
    Gerasimov A.A.
    Grigor'Ev B.A.
    [J]. Thermal Engineering, 2011, 58 (8) : 691 - 698
  • [3] Alekseev V. V., 1983, Soviet Physics - Uspekhi, V26, P906, DOI 10.1070/PU1983v026n10ABEH004520
  • [4] Reference Correlations for the Viscosity and Thermal Conductivity of n-Undecane
    Assael, M. J.
    Papalas, T. B.
    Huber, M. L.
    [J]. JOURNAL OF PHYSICAL AND CHEMICAL REFERENCE DATA, 2017, 46 (03)
  • [5] Bretschnider S., 1958, Wlasnosci Gazow I Cieczy, P536
  • [6] Natural convective heat transfer in square enclosures heated from below
    Calcagni, B
    Marsili, F
    Paroncini, M
    [J]. APPLIED THERMAL ENGINEERING, 2005, 25 (16) : 2522 - 2531
  • [7] Natural convection from a horizontal cylinder in a rectangular cavity
    Cesini, G
    Paroncini, M
    Cortella, G
    Manzan, M
    [J]. INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 1999, 42 (10) : 1801 - 1811
  • [8] Supersaturation fluctuations in moist turbulent Rayleigh-Benard convection: a two-scalar transport problem
    Chandrakar, Kamal Kant
    Cantrell, Will
    Krueger, Steven
    Shaw, Raymond A.
    Wunsch, Scott
    [J]. JOURNAL OF FLUID MECHANICS, 2020, 884
  • [9] Chashechkin Yuli D., 2017, WSEAS Transactions on Fluid Mechanics, V12, P33
  • [10] Chashechkin Y. D., 2020, Int. J. Comput. Methods Exp. Meas, V8, P148, DOI [10.2495/CMEM-V8-N2-148-161, DOI 10.2495/CMEM-V8-N2-148-161]