Published August 2015 | Version v1
Journal article

Numerical study on the effect of initial flow velocity on liquid film thickness of accelerated slug flow in a micro tube

  • 1. DENSO Corporation, 1-1 Showa-cho, Kariya, Aichi 448-8661 (Japan)
  • 2. Institute of Industrial Science, The University of Tokyo, 4-6-1 Komaba, Meguro-ku, Tokyo 153-0041 (Japan)
  • 3. Department of Mechanical and Design Engineering, Hongik University, 2639 Sejong-ro, Jochiwon-eup, Sejong 339-701 (Korea, Republic of)

Description

Highlights: • We examine liquid film thickness of accelerated slug flows with initial velocity. • Liquid film of accelerated flow is thinner than that of steady flow. • Liquid film is thinner for smaller initial flow velocity and larger acceleration. • Velocity profile in the liquid slug is approximated by that of single phase flow. • New correlation for liquid film thickness of accelerated slug flow is developed. - Abstract: Numerical simulation of air–water slug flows accelerated from steady states with different initial velocities in a micro tube is conducted. It is shown that the liquid film formed between the gas bubble and the wall in an accelerated flow is significantly thinner than that in a steady flow at the same instantaneous capillary number. Specifically, the liquid film thickness is kept almost unchanged just after the onset of acceleration, and then gradually increases and eventually converges to that of an accelerated flow from zero initial velocity. Due to the flow acceleration, the Stokes layer is generated from the wall, and the instant velocity profile can be given by superposition of the Stokes layer and the initial parabolic velocity profile of a steady flow. It is found that the velocity profile inside a liquid slug away from the bubble can be well predicted by the analytical solution of a single-phase flow with acceleration. The change of the velocity profile in an accelerated flow changes the balance between the inertia, surface tension and viscous forces around the meniscus region, and thus the resultant liquid film thickness. By introducing the displacement thickness, the existing correlation for liquid film thickness in a steady flow (Han and Shikazono, 2009) is extended so that it can be applied to a flow with acceleration from an arbitrary initial velocity. It is demonstrated that the proposed correlation can predict liquid film thickness at Re < 4600 within the range of ±10% accuracy

Availability note (English)

Available from http://dx.doi.org/10.1016/j.ijheatfluidflow.2015.04.005

Additional details

Identifiers

DOI
10.1016/j.ijheatfluidflow.2015.04.005;
PII
S0142-727X(15)00043-0;

Publishing Information

Journal Title
International Journal of Heat and Fluid Flow
Journal Volume
54
Journal Page Range
p. 77-86
ISSN
0142-727X
CODEN
IJHFD2

Optional Information

Copyright
Copyright (c) 2015 Elsevier Science B.V., Amsterdam, The Netherlands, All rights reserved.