Flow properties of surfactant solutions of rod-like micelles passing through a small slit

被引:5
|
作者
Ushida, Akiomi [1 ]
Sato, Taisuke [2 ]
Narumi, Takatsune [3 ,4 ]
Takahashi, Tsutomu [5 ]
Onuma, Takashi [6 ]
Ito, Masatoshi [6 ]
Hasegawa, Tomiichi [7 ]
机构
[1] Niigata Univ, Fac Engn, Inst Sci & Technol, Nishi Ku, 8050-2 Ikarashi, Niigata, Niigata 9502181, Japan
[2] Niigata Univ, Ctr Transdisciplinary Res, Inst Res Promot, Nishi Ku, 8050-2 Ikarashi, Niigata, Niigata 9502181, Japan
[3] Niigata Univ, Inst Sci & Technol, Coll Creat Studies, Nishi Ku, 8050-2 Ikarashi, Niigata, Niigata 9502181, Japan
[4] Niigata Univ, Fac Engn, Nishi Ku, 8050-2 Ikarashi, Niigata, Niigata 9502181, Japan
[5] Nagaoka Univ Technol, Fac Engn, Dept Machine Creat Engn, 1603-1 Kamitomioka, Nagaoka, Niigata 9402188, Japan
[6] Photron Ltd 21F, Chiyoda Ku, Jinbocho Mitsui Bldg,1-105 Kanda Jinbocho, Tokyo 1010051, Japan
[7] Niigata Coll Technol, Nishi Ku, 5-13-7 Kamishinei Cho, Niigata, Niigata 9502076, Japan
关键词
Slit; Surfactant solution; Pressure drop; Phase difference; Flow-induced structure; DRAG REDUCTION; VISCOELASTIC PROPERTIES; DETERGENT MOLECULES; AQUEOUS-MEDIA; ENTRY FLOW; OPTICAL ANISOTROPY; WORMLIKE MICELLES; POLYMER-SOLUTIONS; RHEO-OPTICS; RATIO;
D O I
10.1016/j.jnnfm.2020.104296
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Pressure drops in flows through a small slit were experimentally measured at constant flow rates to investigate flows with an abrupt contraction and expansion. The flow properties of water, 50 wt% glycerol solution, and two types of surfactant solutions (Lipoquad and Lipothoquad) with a counterion (NaSal) were examined. The slit heights used were 480 mu m, 222 mu m, and 129 mu m, with estimated hydraulic diameters of 938 mu m, 439 mu m, and 256 mu m, respectively. Viscosity was measured using a capillary-type viscosity meter. Water and the 50 wt% glycerol solution exhibited Newtonian viscosity, with the viscosity of the glycerol solution being 10 times that of water. By contrast, the surfactant solutions, which contained rod-like micelles, exhibited non-Newtonian viscosity. A power law model was therefore applied for the relationship between shear viscosity and shear rate on the wall. The observed flow properties of water (and the 50 wt% glycerol solution) and the numerical predictions of the Navier-Stokes equations were found to agree to within the experimental errors. In plots of the dimensionless pressure drop against the generalized Reynolds number, however, anomalous flow properties of the surfactant solutions were observed. The pressure drops of Lipoquad/NaSal agreed with those of water (and the 50 wt% glycerol solution) at low apparent strain rate (Reynolds number) but were larger at high apparent strain rate (Reynolds number). Furthermore, the pressure drops of Lipothoquad/NaSal were greater than those of water in the investigated range of the generalized Reynolds number. To examine these experimental results further, flows in a planar channel with an abrupt contraction and expansion were observed using a polarization measurement system based on a high-speed polarization camera. In contrast to polymer solutions (in which polymer chains were oriented along the flow direction), the phase difference for Lipoquad/NaSal before and in the slit region was high in regions with a strong elongational component. In addition, it was high along the centerline after the slit region. These results also differ from those of simple shear flows. Furthermore, the phase difference of Lipothoquad/NaSal was very unstable. In addition, the relationship between the resultant pressure drop and the measured phase differences was investigated, and a dependence was found on the apparent strain rate (Weissenberg number).
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页数:10
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