|

Numerical Analysis of the Effect of Longitudinal and Transverse Pitch Ratio on the Flow Characteristic of Staggered Drop-Shaped Tubes Bundle

Authors: Deeb R. Published: 08.03.2023
Published in issue: #1(106)/2023  
DOI: 10.18698/1812-3368-2023-1-95-116

 
Category: Physics | Chapter: Thermal Physics and Theoretical Heat Engineering  
Keywords: drop-shaped tube, transversal pitch ratio, longitudinal pitch ratio, pressure coefficient, friction factor, numerical study, CFD

Abstract

The present work has been conducted to clarify flow behavior across staggered drop-shaped tubes bundle at various longitudinal and transversal pitch ratios (the tubes bundle configures in 18 cases). The investigation covers the effects of key design parameters of Reynolds numbers Re = (1.78--18.72) · 103, longitudinal pitch ratios (PL = 1.44, 1.54, 1.64, 1.74, 1.84 and 2.04) and transversal pitch ratios (PT = 1.24, 1.44, 1.64 and 1.82). ANSYS Fluent software package is used to predict the flow pattern around tubes. The results of this study showed that at a constant longitudinal pitch ratio, the minimum friction factor varies with the Reynolds number and transversal pitch ratio. As the Re increases, the friction factor decreases. The minimum values of the friction factor were achieved for (PL = 1.24 and PT = 1.44) at Re = 1.78 · 103, and (PT = PL = 1.64) at Re > 1.78 · 103. Correlation of the friction factor for the studied models were presented

Please cite this article in English as:

Deeb R. Numerical analysis of the effect of longitudinal and transverse pitch ratio on the flow characteristics of staggered drop-shaped tubes bundle. Herald of the Bauman Moscow State Technical University, Series Natural Sciences, 2023, no. 1 (106), pp. 95--116 (in Russ.). DOI: https://doi.org/10.18698/1812-3368-2023-1-95-116

References

[1] Deeb R. Comparative analysis of the latest improvements in heat transfer and hydrodynamic characteristics of smooth tubes in cross flow. Teplovye protsessy v tekhnike [Thermal Processes in Engineering], 2021, vol. 13, no. 2, pp. 50--69 (in Russ.). DOI: https://doi.org/10.34759/tpt-2021-13-2-50-69

[2] Wang J., Zheng H., Tian Z. Numerical simulation with a TVD--FVM method for circular cylinder wake control by a fairing. J. Fluids Struct., 2015, vol. 57, pp. 15--31. DOI: https://doi.org/10.1016/j.jfluidstructs.2015.05.008

[3] Horvat A., Leskovar M., Mavko B. Comparison of heat transfer conditions in tube bundle cross-flow for different tube shapes. Int. J. Heat Mass Transf., 2006, vol. 49, iss. 5-6, pp. 1027--1038. DOI: https://doi.org/10.1016/j.ijheatmasstransfer.2005.09.030

[4] Mohanty R.L., Swain A., Das M.K. Thermal performance of mixed tube bundle composed of circular and elliptical tubes. Therm. Sci. Eng. Prog., 2018, vol. 5, pp. 492--505. DOI: https://doi.org/10.1016/j.tsep.2018.02.009

[5] Deeb R. Experimental and numerical investigation of the effect of angle of attack on air flow characteristics around drop-shaped tube. Phys. Fluids, 2021, vol. 33, iss. 6, art. 065110. DOI: https://doi.org/10.1063/5.0053040

[6] Deeb R. The effect of angle of attack on heat transfer characteristics of drop-shaped tube. Int. J. Heat Mass Transf., 2022, vol. 183, part B, art. 122115. DOI: https://doi.org/10.1016/j.ijheatmasstransfer.2021.122115

[7] Antufyev V.M., Beletskiy G.S. Teplootdacha i aerodinamicheskie soprotivleniya zubchatykh poverkhnostey v poperechnom potoke [Heat transfer and aerodynamic resistance of ribbed surfaces in cross-flow]. Moscow, Mashgiz Publ., 1948.

[8] Antufyev V.M. Effektivnost razlichnykh form konvektivnykh poverkhnostey nagreva [Efficiency of various forms of convective heating surfaces]. Moscow, Leningrad, Energiya Publ., 1966.

[9] Kays W.M., London A.L. Compact heat exchangers. Krieger, 1998.

[10] Brauer H. Verein Grosskesselbesitzer. Mitt, 1961, vol. 73, pp. 260--276.

[11] Lavasani A.M., Bayat H. Experimental study of convective heat transfer from in-line cam shaped tube bank in crossflow. Appl. Therm. Eng., 2014, vol. 65, iss. 1-2, pp. 85--93. DOI: https://doi.org/10.1016/j.applthermaleng.2013.12.078

[12] Sayed A.S., Mesalhy O., Khass T., et al. Parametric study of air-cooling process via water cooled bundle of wing-shaped tubes. EIJST, 2012, vol. 15, no. 3, pp. 167--179. DOI: https://doi.org/10.21608/eijest.2012.96756

[13] Zhukova Yu.V., Terekh A.M., Rudenko A.I. Convective heat transfer and drag of two side-by-side tubes in the narrow channel at different Reynolds number. Doklady Natsionalnoy akademii nauk Belarusi [The Doklady of the National Academy of Sciences of Belarus], 2018, vol. 62, no. 6, pp. 756--762 (in Russ.). DOI: https://doi.org/10.29235/1561-8323-2018-62-6-756-762

[14] Deeb R., Sidenkov D.V., Salokhin V.I. Numerical investigation of thermal-hydraulic performance of circular and non-circular tubes in cross-flow. Herald of the Bauman Moscow State Technical University, Series Natural Sciences, 2021, no. 2 (95), pp. 102--117. DOI: https://doi.org/10.18698/1812-3368-2021-2-102-117

[15] Deeb R. Experimental and numerical investigation of the effects of angle-of-attack on air flow characteristics for single drop-shaped tube. Fiziko-khimicheskaya kinetika v gazovoy dinamike [Physical-Chemical Kinetics in Gas Dynamics], 2021, vol. 22, no. 2, pp. 53--67 (in Russ.). DOI: http://doi.org/10.33257/PhChGD.22.2.932

[16] Deeb R., Kolotvin A.V. Numerical investigation of heat transfer and hydrody-namics for in-line drop-shaped tubes bundle. Trudy Akademenergo [Transactions of Academenergo], 2020, no. 3, pp. 42--59 (in Russ.). DOI: https://doi.org/10.34129/2070-4755-2020-60-3-42-59

[17] Deeb R. Effect of angle of attack on heat transfer and hydrodynamic characteristics for staggered drop-shaped tubes bundle in cross-flow. Doklady AN VSh RF [Proceedings of the Russian Higher School Academy of Sciences], 2020, vol. 48, no. 3, pp. 21--36 (in Russ.). DOI: https://doi.org/10.17212/1727-2769-2020-3-21-36

[18] Sayed Ahmed S.E., Ibrahiem E.Z., Mesalhy O.M., et al. Effect of attack and cone angles on air flow characteristics for staggered wing shaped tubes bundle. Heat Mass Transf., 2015, vol. 51, no. 7, pp. 1001--1016. DOI: https://doi.org/10.1007/s00231-014-1473-3

[19] ANSYS Fluent reference guide. Release 16.0. ANSYS, 2015.

[20] Zukaukas A. Heat transfer from tubes in cross-flow. Adv. Heat Transf., 1972, vol. 8, pp. 93--160. DOI: https://doi.org/10.1016/S0065-2717(08)70038-8

[21] Volkov K.N. Large-eddy simulation of circle turbulent impingement jet. Matematicheskoe modelirovanie, 2007, vol. 19, no. 2, pp. 3--22 (in Russ.).

[22] Zadrazil I., Bismarck A., Hewitt G.F., et al. Shear layers in the turbulent pipe flow of drag reducing polymer solutions. Chem. Eng. Sci., 2012, vol. 72, pp. 142--154. DOI: https://doi.org/10.1016/j.ces.2011.12.044