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  4. Stability Analysis of Thin Liquid Film in a Micro-Pipette
 
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Stability Analysis of Thin Liquid Film in a Micro-Pipette

Date Issued
2008
Date
2008
Author(s)
Tsai, Hsieh-Chen
URI
http://ntur.lib.ntu.edu.tw//handle/246246/187068
Abstract
The present study is aimed at investigating theoretically the instability of the thin liquid film attached to the inside wall of a micro-pipette through which there exists a steady vapor or gaseous flow. Such an instability, usually called “interfacial instability”, is mainly due to the interfacial deformation and surface tension effect accompanied with the liquid-vapor flow, slip boundary condition at the liquid-vapor interface, liquid film thickness, etc.The linear stability analysis is employed to accomplish the task. The main procedures of analysis are described briefly as follows: (1) Obtain the basic solutions for the liquid-vapor flow analytically. (2) Derive the disturbance equations and the related boundary conditions for small disturbances. (3) Obtain the dimensionless parameters by introducing appropriate non-dimensionalization scheme. (4) With the aid of normal mode analysis, the disturbance equations is reduced to an eigenvalue problem. (5) Solve the long-wave instability analytically. (6) Obtain the onset conditions for the interfacial instability of the thin liquid film with numerical computations and discuss the physical mechanism.The results indicate that the interfacial deformation, basic liquid-vapor flows, slip boundary condition, and liquid film thickness really affect the interfacial instability of the thin liquid film. In the long-wave instabilities, although the liquid-vapor flow and the interfacial slip boundary condition do not change the onset wavenumber, they make the instability shift from the stationary mode to the oscillatory mode. The numerical computation not only demonstrates such a phenomenon but also finds that, in general situations, the basic liquid-vapor flow, or Reynolds number effect, will increase the range of the onset wavenumber of instability. However, the maximum growth rate of instability decreases due to the inertia effect. In addition, it is also found that the wavelength of the unstable disturbances depends proportionally on the film thickness. The interfacial slip boundary condition also changes the onset wavenumber, varying between the one with no-slip boundary condition and that for a stationary liquid film, the classical problem. The frequency of the oscillatory mode of instability has been changed as well.
Subjects
micro-pipette
liquid film
slip boundary condition
surface tension
interfacial instability
linear stability analysis
basic solutions
disturbance equations
long-wave instability
wavenumber
Type
thesis
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