Investigation of microbubble boundary layer using particle tracking velocimetry

被引:36
作者
Ortiz-Villafuerte, Javier [1 ]
Hassan, Yassin A. [1 ]
机构
[1] Texas A&M Univ, Dept Nucl Engn, College Stn, TX 77843 USA
来源
JOURNAL OF FLUIDS ENGINEERING-TRANSACTIONS OF THE ASME | 2006年 / 128卷 / 03期
关键词
drag reduction; microbubbles; PIV; PTV;
D O I
10.1115/1.2174062
中图分类号
TH [机械、仪表工业];
学科分类号
0802 ;
摘要
Particle tracking velocimetry has been used to measure the velocity fields of both continuous phase and dispersed microbubble phase, in a turbulent boundary layer of a channel flow. Hydrogen and oxygen microbubbles were generated by electrolysis. The average size of the microbubbles was 15 mu m in radius reductions Drag 40% were obtained, when the accumulation of microbubbles took place in a critical zone within the buffer layer. It is confirmed that a combination of concentration and distribution of microbubbles in the boundary layer can achieve high drag reduction values. Microbubble distribution across the boundary layer and their influence on the profile of the components of the liquid mean velocity vector are presented. The spanwise component of the mean vorticity field was inferred from the measured velocity fields. A decrease in the magnitude of the vorticity is found, leading to an increase of the viscous sublayer thickness. This behavior is similar to the observation of drag reduction by polymer and surfactant injection into liquid flows. The results obtained indicate that drag reduction by microbubble injection is not a simple consequence of density effects, but is an active and dynamic interaction between the turbulence structure in the buffer zone and the distribution of the microbubbles.
引用
收藏
页码:507 / 519
页数:13
相关论文
共 27 条
[1]  
ARAKAWA K, 2003, 4 ASME JSME JOINT FL
[2]   Advantages of using a power law in a low R(theta) turbulent boundary layer [J].
Djenidi, L ;
Dubief, Y ;
Antonia, RA .
EXPERIMENTS IN FLUIDS, 1997, 22 (04) :348-350
[3]  
DUBIEF Y, 2003, 4 ASME JSME JOINT FL
[4]   Wall shear stress determination from near-wall mean velocity data in turbulent pipe and channel flows [J].
Durst, F ;
Kikura, H ;
Lekakis, I ;
Jovanovic, J ;
Ye, Q .
EXPERIMENTS IN FLUIDS, 1996, 20 (06) :417-428
[5]   On the physical mechanisms of drag reduction in a spatially developing turbulent boundary layer laden with microbubbles [J].
Ferrante, A ;
Elghobashi, S .
JOURNAL OF FLUID MECHANICS, 2004, 503 :345-355
[6]   Drag reduction by coupled systems: microbubble injection with homogeneous polymer and surfactant solutions [J].
Fontaine, AA ;
Deutsch, S ;
Brungart, TA ;
Petrie, HL ;
Fenstermacker, M .
EXPERIMENTS IN FLUIDS, 1999, 26 (05) :397-403
[7]  
Gad-El-Hak M., 2000, FLOW CONTROL PASSIVE
[8]   SIMULTANEOUS VELOCITY-MEASUREMENTS OF BOTH COMPONENTS OF A 2-PHASE FLOW USING PARTICLE IMAGE VELOCIMETRY [J].
HASSAN, YA ;
BLANCHAT, TK ;
SEELEY, CH ;
CANAAN, RE .
INTERNATIONAL JOURNAL OF MULTIPHASE FLOW, 1992, 18 (03) :371-395
[9]  
KAWAMURA T, 2003, 4 ASME JSME JOINT FL
[10]  
KITAGAWA A, 2003, 4 ASME JSME JOINT FL