Published October 1990 | Version v1
Journal article

Buoyancy induced instability of laminar flows in vertical annuli: Pt. 2

  • 1. New Mexico Univ., Albuquerque, NM (USA). Dept. of Chemical and Nuclear Engineering

Description

A two-dimensional numerical model, based on the elliptic Navier-Stokes equations, is developed to predict the location of incipient instability, xfr, in low Reynolds number (Re) water flows in vertical annuli. Results show that neglecting the radial momentum can underpredict the values of xfr at high Grq/Re values (Grq is the Grashof number) by as much as 45%. Conversely, the axial momentum diffusion only insignificantly affects the velocity fields and, hence, the accuracy of predicting xfr. The results of a parametric analysis investigating the effects of various operating conditions and geometrical parameters is used to develop general criteria for predicting the onset of flow instability in vertical annuli. These criteria are within ±10 and ±15% of the experimental data for buoyancy assisted and opposed flows, respectively. (author)

Additional details

Additional titles

Subtitle (English)
Model development and analysis

Publishing Information

Journal Title
International Journal of Heat and Mass Transfer
Journal Volume
33
Journal Issue
10
Series
Int. J. Heat Mass Transfer.
Journal Page Range
2161-2172
ISSN
0017-9310
CODEN
IJHMA