Heat Transfer Characteristics and Fluid Flow past Staggered Flat-Tube Bank Using CFD

A computational fluid dynamic (CFD-Fluent 6.2) for two-dimensional fluid flow is applied to predict the pressure drop and heat transfer characteristics of laminar and turbulent flow past staggered flat-tube bank. Effect of aspect ratio ((H/D)/(L/D)) on pressure drop, temperature, and velocity contour for laminar and turbulent flow over staggered flat-tube bank is studied. The theoretical results of the present models are compared with previously published experimental data of different authors. Satisfactory agreement is demonstrated. Also, the comparison between the present study and others analytical methods for the Re number with Nu number is done. The results show as the Reynolds number increases the maximum velocity in the passage between the upper and lower tubes increases. The comparisons show a fair agreement especially in the turbulent flow region. The good agreement of the data of this work with these recommended analytical methods validates the current study.





References:
[1] Wang, Y. Q., “Laminar flow through a staggered tube bank”, Journal of
Thermo-physics and Heat Transfer, 18: 4, 2004, pp. 557–559.
[2] Zhukauskas A., “Convective heat transfer in cross flow”, Handbook of
single-phase convective heat transfer, Wiley & Sons, New York, 1987.
[3] Zdravistch F., C. Fletcher, M. Behnia, “Numerical laminar and turbulent
fluid flow and heat transfer predictions in tube banks”, Int. J. Num.
Meth. Heat Fluid Flow 5: 8, 1995, pp. 717–733.
[4] Wang, Y. Q., Penner, L. A., and Ormiston, S. J., “Analysis of laminar
forced convection of air for cross flow in banks of staggered tubes”,
Numerical Heat Transfer, Part A, Applications, 38: 8, 2000, pp. 819–
845.
[5] Hausen H., “Heat Transfer from Tubes in Counter Flow, Parallel Flow
and Cross Flow”, McGraw H. -Hill, USA, 1983, p. 54.
[6] Hilpert, R., W rmeabgabe Von geheizten Dr hten und Rohren, Forsch.
Geb. Ingenieurwes, 4, 1933, pp. 215-224.
[7] Pope, S. B., “Turbulent flows”, Cambridge University Press:
Cambridge, 2000.
[8] Launder B. E. and Sharma B. I., “Application of the energy-dissipation
model of turbulence to the calculation of flow near a spinning disc”,
Letters in Heat and Mass Transfer, 1, 1974, pp. 131-138.
[9] Benarji N., C. Balaji, S. P. Venkateshan, “Unsteady fluid flow and heat
transfer over a bank of flat tubes”, Heat Mass Transfer, 2008.
[10] Zhukauskas A. “Heat transfer from tubes in cross flow”, Advances in
Heat Transfer, 8, 1972, pp. 93-160.
[11] Bahaidarah HMS, Anand NK, Chen HC, “A numerical study of fluid
flow and heat transfer over a bank of flat tubes”, Heat Transfer Part A
48, 2005, pp. 359–385.
[12] Schmidt Th., “In Heat transfer of finned tube bundles in cross flow”,
eds. Zukauskas A., and Hewitt, G., p. 172, Hemisphere Publishing,
Washington, D.C., 1988.
[13] Yudin V. F., and Tochtarova, L. S., “In Heat transfer of finned tube
bundles in cross flow”, eds. Zukauskas A., and Hewitt, G., p. 173,
Hemisphere Publishing, Washington, D.C., 1988.
[14] Gnielinski V., W rme bergang bei Querstr mung durch einzelne
Rohrreihen und Rohrb ndel, VDI-W rmeatlas, 2. Auflage, Abschnitt
Ge, 1974.