Method of moments for laminar dispersion in an oscillatory flow through curved channels with absorbing walls

被引:0
作者
Sushil Kumar
Girija Jayaraman
机构
[1] Indian Institute of Technology,Centre for Atmospheric Sciences
来源
Heat and Mass Transfer | 2008年 / 44卷
关键词
Concentration Distribution; Periodic Flow; Dispersion Coefficient; Oscillatory Flow; Boundary Absorption;
D O I
暂无
中图分类号
学科分类号
摘要
The unsteady dispersion of a solute, when the fluid is driven through a curved channel with absorbing walls by an imposed pulsatile pressure gradient, is studied using the method of moments. The study examines the effect of oscillatory Reynolds number, amplitude/frequency of the pressure pulsation and boundary absorption on the longitudinal dispersion. The methodology involves a set of unsteady integral moment equations obtained by applying the Aris-Barton method of moments on the convective-diffusion equation for a curved channel. Central moments are obtained from the moment equations which are solved by a finite-difference implicit scheme. The effect of curvature and boundary absorption on the effective dispersion coefficient from the initial to the stationary stage of the oscillatory flow is studied. Amplitude of the effective dispersion coefficient is found to increase with curvature and decrease with frequency of the pressure pulsation. For large Peclet number and Schmidt number, the amplitude of the dispersion coefficient can be 1.6 times that in a straight channel at large times. Also, for large times, the amplitude of the dispersion coefficient is twice the amplitude of the dispersion coefficient as α, the frequency parameter changes from 0.5 to 1.0. The axial distributions of mean concentration are determined from the first four central moments by using the Hermite polynomial representation. The effect of curvature is to delay the stationary state and also the approach to normality of the concentration distribution. The study has importance in understanding the spreading of pollutants in tidal basins and natural current fields.
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页码:1323 / 1336
页数:13
相关论文
共 33 条
[1]  
Taylor GI(1953)Dispersion of soluble matter in solvent flowing slowly through a tube Proc Roy Soc Lond A 219 86-203
[2]  
Aris R(1956)On the dispersion of a solute in a fluid flowing through a tube Proc Roy Soc Lond A 235 67-77
[3]  
Barton NG(1983)On the method of moments for solute dispersion J Fluid Mech 126 205-218
[4]  
Aris R(1960)On the dispersion of a solute in pulsating flow through a tube Proc Roy Soc Lond A 259 370-376
[5]  
Chatwin PC(1975)On the longitudinal dispersion of passive contaminant in oscillatory flows in tubes J Fluid Mech 71 513-527
[6]  
Smith R(1982)Contaminant dispersion in oscillatory flows J Fluid Mech 114 379-398
[7]  
Yasuda H(1982)Longitudinal dispersion due to the boundary layer in an oscillatory current: theoretical analysis in the case of an instantaneous line source J Ocean Soc Jpn 38 385-394
[8]  
Yasuda H(1984)Longitudinal dispersion of matter due to the shear effect of steady and oscillatory currents J Fluid Mech 148 383-403
[9]  
Yasuda H(1989)Longitudinal dispersion of suspended particles in oscillatory currents J Mar Res 47 153-168
[10]  
Sarkar A(2004)The effect of wall absorption on dispersion in oscillatory flow in an annulus-application to catheterised artery Acta Mech 172 151-167