Investigation on the characteristics of turbulence transport for momentum and heat in a drag-reducing surfactant solution flow

被引:91
作者
Li, FC
Kawaguchi, Y [1 ]
Hishida, K
机构
[1] Natl Inst Adv Ind Sci & Technol, Turbomachinery Res Grp, Inst Energy Utilizat, Tsukuba, Ibaraki 3058564, Japan
[2] Keio Univ, Dept Syst Design Engn, Yokohama, Kanagawa 2238522, Japan
关键词
D O I
10.1063/1.1769375
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Simultaneous measurements of the velocity (u and nu in the streamwise and wall-normal directions, respectively) and temperature fluctuations (theta) in the thermal boundary layer were carried out for a heated drag-reducing surfactant solution flow in a two-dimensional channel by means of a two-component laser Doppler velocimetry and a fine-wire thermocouple probe. The drag-reducing fluid tested was a dilute aqueous solution of a cationic surfactant, cetyltrimethylammonium chloride (CTAC), with 30 ppm concentration. Measurements were performed for CTAC solution flows at an inlet temperature of 31 degreesC and at three Reynolds numbers of 3.5x10(4), 2.5x10(4), and 1.5x10(4), respectively, and for water flow at the Reynolds number of 2.5x10(4). Drag reduction (DR) and heat transfer reduction (HTR) for the three CTAC solution flows were DR(HTR)=33.0(20.2), 70.0(77.3), and 65.1(77.0) percentage, respectively. At a high HTR level, a large temperature gradient appeared when y(+)<50 in the measured range (the superscript "+" denotes normalization with inner variables). Temperature fluctuation intensity, theta('+), and the streamwise turbulent heat flux, (u(+)theta(+)) over bar, were enhanced in the layer with large temperature gradient for the drag-reducing flow, whereas the wall-normal turbulent heat flux, -(nu(+)theta(+)) over bar, was depressed throughout the measured range. The depression of -(nu(+)theta(+)) over bar was due to a cause similar to that of the depression of the Reynolds shear stress -(u(+)nu(+)) over bar, i.e., in addition to the decrease of nu('+), decorrelation between the two variables occurred. The decrease of -(nu(+)theta(+)) over bar resulted in HTR, which was similar to that of the decrease of -(u(+)nu(+)) over bar resulted in DR for the drag-reducing flow by additives. The turbulence production terms, -(U+nu(+)) over bar(partial derivativeU(+)/partial derivativey(+)) and -(nu(+)theta(+)) over bar(partial derivativeTheta(+)/partial derivativey(+)) where U and Theta are mean velocity and temperature, were reduced in the drag-reducing CTAC solution flows. The estimated power spectra of temperature fluctuations implied that the drag-reducing surfactant additive depressed the turbulence at high frequencies or at small scales, whereas it increased the turbulent energy at low frequencies or at large scales. The profiles of the eddy diffusivities for momentum and heat in the CTAC solution flows were both decreased. The turbulent Prandtl number deviated from that of the water flow near the heated wall with a value close to the molecular Prandtl number of the solvent. (C) 2004 American Institute of Physics.
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收藏
页码:3281 / 3295
页数:15
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