Viscous flow in a cylindrical tube containing a line of spherical particles

Author:

Wang Henry,Skalak Richard

Abstract

The viscous, creeping flow through a cylindrical tube of a liquid, which contains rigid, spherical particles, is investigated analytically. The spheres are located on the axis of the cylinder and are equally spaced. Solutions are derived for particles in motion and fixed, with and without fluid discharge. Numerical results are presented for the drag on each sphere and the mean pressure drop for a wide range of sizes and spacings of the spheres. The study is motivated by possible application to blood flow in capillaries, where red blood cells represent particles of the same order of magnitude as the diameter of the capillary itself. The results may also be of interest in other applications, such as sedimentation and fluidized beds. It is shown that there is little interaction between particles if the spacing is more than one tube diameter, and that the additional pressure drop over that for Poiseuille flow is less than 50% if the sphere diameter is less than 0·8 of the tube diameter.

Publisher

Cambridge University Press (CUP)

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics

Reference16 articles.

1. Wang, H. & Skalak, R. 1967 Tech. Rept. 1, Project NR 062–393.New York:Colombia University.

2. Hobson, E. W. 1955 The Theory of Spherical and Ellipsoidal Harmonics .New York:Chelsea.

3. Sonshine, R. M. & Brenner, H. 1966 Appl. Sci. Res. 16,425–454.

4. Atsumi, A. 1960 J. Appl. Mech. 82E, 87–92.

5. Watson, G. N. 1944 Theory of Bessel Functions .Cambridge University Press.

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