Research Article
BibTex RIS Cite

Flow Patterns Around a Sphere in Terms of Wall Proximity

Year 2025, Volume: 29 Issue: 5, 592 - 601, 27.10.2025
https://doi.org/10.16984/saufenbilder.1704126

Abstract

Flow over a sphere exhibits three-dimensional phenomena even at lower values of Reynolds number (Re). Nonetheless, three-dimensional flow structures may also be affected by boundary layers on the rough walls. For this reason, the effects of wall proximity are very significant for the present case. Regarding these issues, flow characteristics of a sphere have been examined for several gap ratios from G* = 0.01 to G* = 2 at Re = 250. The influence of jet flow between the sphere and the wall has increased by decreasing the gap ratio. Although symmetrical flow patterns have been observed for G* = 1 and G* = 2, this situation is not valid for G* ≤ 0.5 in the present study. It is clearly observed in the wake regions for G* ≤ 0.25 and the positive cross-stream velocity components become more dominant, especially for G* = 0.1 and G* = 0.25, respectively. The positive spanwise vorticity component becomes more dominant; however, the negative one is more dominant for G* ≤ 0.1 in terms of gap ratios. For the case of G* ≤ 0.05, the drag coefficients are less than CD = 0.47 and these values are so close to each other. For G* = 0.1, it is around CD = 0.5 for the present problem. By increasing the gap ratios, drag coefficient values also indicated an increasing trend. Moreover, CD = 0.579 has been attained for the case of G* = 0.25 and it is approximately CD = 0.68 for G* = 0.5 as observed. On the other hand, the values of G* = 1 and G* = 2 approached the values of the uniform flow conditions and the effect of the wall proximity by the boundary layer of the bottom surface disappeared.

References

  • T. Johnson, V. Patel, “Flow past a sphere up to a Reynolds number of 300,” Journal of Fluid Mechanics, vol. 378, pp. 19-70, 1999.
  • D. Kim, “Laminar flow past a sphere rotating in the transverse direction,” Journal of Mechanical Science and Technology, vol. 23, pp. 578-589, 2009.
  • G. S. Constantinescu, K. D. Squires, “LES and DES investigations of turbulent flow over a sphere at Re= 10,000,” Flow, Turbulence and Combustion, vol. 70, pp. 267-298, 2003.
  • D. Kim, H. Choi, “Laminar flow past a sphere rotating in the streamwise direction,” Journal of Fluid Mechanics, vol. 461, pp. 365-386, 2002.
  • N. Mahir, “Three-dimensional flow around a square cylinder near a wall,” Ocean Engineering, vol. 36, no. 5, pp. 357-367, 2009.
  • L. Sweeney, W. Finlay, “Lift and drag forces on a sphere attached to a wall in a Blasius boundary layer,” Journal of Aerosol Science, vol. 38, no. 1, pp. 131-135, 2007.
  • T. Tsutsui, “Flow around a sphere in a plane turbulent boundary layer,” Journal of Wind Engineering and Industrial Aerodynamics, vol. 96, no. 6-7, pp. 779-792, 2008.
  • R. Martinez, L. Sweeney, W. Finlay, “Aerodynamic forces and moment on a sphere or cylinder attached to a wall in a Blasius boundary layer,” Engineering Applications of Computational Fluid Mechanics, vol. 3, no. 3, pp. 289-295, 2009.
  • A. Mongruel, C. Lamriben, S. Yahiaoui, F. Feuillebois, “The approach of a sphere to a wall at finite Reynolds number,” Journal of Fluid Mechanics, vol. 661, pp. 229-238, 2010.
  • Q. Liu, A. Prosperetti, “Wall effects on a rotating sphere,” Journal of Fluid Mechanics, vol. 657, pp. 1-21, 2010.
  • S. Yahiaoui, F. Feuillebois, “Lift on a sphere moving near a wall in a parabolic flow,” Journal of Fluid Mechanics, vol. 662, pp. 447-474, 2010.
  • S. Dey, S. Sarkar, S. K. Bose, S. Tait, O. Castro-Orgaz, “Wall-wake flows downstream of a sphere placed on a plane rough wall,” Journal of Hydraulic Engineering, vol. 137, no. 10, pp. 1173-1189, 2011.
  • I. Rodriguez, R. Borell, O. Lehmkuhl, C. D. P. Segarra, A. Oliva, “Direct numerical simulation of the flow over a sphere at Re= 3700,” Journal of Fluid Mechanics, vol. 679, pp. 263-287, 2011.
  • H. Homann, J. Bec, R. Grauer, “Effect of turbulent fluctuations on the drag and lift forces on a towed sphere and its boundary layer,” Journal of Fluid Mechanics, vol. 721, pp. 155-179, 2013.
  • S. M. Hajimirzaie, A. G. Tsakiris, J. H. Buchholz, A. N. Papanicolaou, “Flow characteristics around a wall-mounted spherical obstacle in a thin boundary layer,” Experiments in Fluids, vol. 55, pp. 1-14, 2014.
  • T. Chastel, A. Mongruel, “Squeeze flow between a sphere and a textured wall,” Physics of Fluids, vol. 28, no. 2, p. 023301, 2016.
  • H. Zhao, X. Liu, D. Li, A. Wei, K. Luo, J. Fan, “Vortex dynamics of a sphere wake in proximity to a wall,” International Journal of Multiphase Flow, vol. 79, pp. 88-106, 2016.
  • R. van Hout, J. Eisma, G. E. Elsinga, J. Westerweel, “Experimental study of the flow in the wake of a stationary sphere immersed in a turbulent boundary layer,” Physical Review Fluids, vol. 3, no. 2, p. 024601, 2018.
  • Y. H. Tee, D. C. Barros, E. K. Longmire, “Motion of finite-size spheres released in a turbulent boundary layer,” International Journal of Multiphase Flow, vol. 133, p. 103462, 2020.
  • G. Yin, M. C. Ong, “On the wake flow behind a sphere in a pipe flow at low Reynolds numbers,” Physics of Fluids, vol. 32, no. 10, p. 103605, 2020.
  • A. Chandel, S. Das, “Effect of wall proximity on the wake of a rotating and translating sphere,” Acta Mechanica, vol. 232, pp. 4833-4846, 2021.
  • A. Chizfahm, V. Joshi, R. Jaiman, “Transverse flow-induced vibrations of a sphere in the proximity of a free surface: A numerical study,” Journal of Fluids and Structures, vol. 101, p. 103224, 2021.
  • Z. G. Feng, J. Gatewood, E. E. Michaelides, “Wall effects on the flow dynamics of a rigid sphere in motion,” Journal of Fluids Engineering, vol. 143, no. 8, p. 081106, 2021.
  • W. Shang, H. Zhao, D. Li, K. Luo, J. Fan, “Direct numerical simulation of the flow around a sphere immersed in a flat-plate turbulent boundary layer,” Physics of Fluids, vol. 33, no. 11, p. 115106, 2021.
  • T. G. Shepard, D. Law, R. K. Menon, K. Ordahl, A. Gutenberg, “Interference drag and flow structure around cylinder-sphere junction,” Ocean Engineering, vol. 234, p. 109276, 2021.
  • D. Li, K. Luo, H. Zhao, W. Shang, J. Fan, “Interaction between a stationary sphere and turbulent flow in a boundary layer,” Physics of Fluids, vol. 34, no. 8, p. 085138, 2022.
  • A. Kumar, S. Das, S. Tiwari, “Wall effect on the wake characteristics of a transversely rotating sphere,” Physics of Fluids, vol. 36, no. 1, p. 013611, 2024.
  • N. Mahir, Z. Altac, “Numerical investigation of convective heat transfer in unsteady flow past two cylinders in tandem arrangements,” International Journal of Heat and Fluid Flow, vol. 29, no. 5, pp. 1309-1318, 2008.
  • I. Goktepeli, “Examination of wake characteristics for tandem circular cylinders via Computational Fluid Dynamics,” Journal of Advanced Research in Natural and Applied Sciences, vol. 11, no. 1, pp. 1-11, 2025.
  • I. Goktepeli, M. Ispir, M H. Aksoy, “Experimental flow control around circular cylinders with porous media coatings,” Acta Mechanica, pp. 1-17, 2025.
There are 30 citations in total.

Details

Primary Language English
Subjects Mechanical Engineering (Other)
Journal Section Research Articles
Authors

İlker Göktepeli 0000-0002-2886-8018

Murat İspir 0000-0001-5238-6011

Muharrem Hilmi Aksoy 0000-0002-6509-8112

Early Pub Date October 21, 2025
Publication Date October 27, 2025
Submission Date May 22, 2025
Acceptance Date September 22, 2025
Published in Issue Year 2025 Volume: 29 Issue: 5

Cite

APA Göktepeli, İ., İspir, M., & Aksoy, M. H. (2025). Flow Patterns Around a Sphere in Terms of Wall Proximity. Sakarya University Journal of Science, 29(5), 592-601. https://doi.org/10.16984/saufenbilder.1704126
AMA Göktepeli İ, İspir M, Aksoy MH. Flow Patterns Around a Sphere in Terms of Wall Proximity. SAUJS. October 2025;29(5):592-601. doi:10.16984/saufenbilder.1704126
Chicago Göktepeli, İlker, Murat İspir, and Muharrem Hilmi Aksoy. “Flow Patterns Around a Sphere in Terms of Wall Proximity”. Sakarya University Journal of Science 29, no. 5 (October 2025): 592-601. https://doi.org/10.16984/saufenbilder.1704126.
EndNote Göktepeli İ, İspir M, Aksoy MH (October 1, 2025) Flow Patterns Around a Sphere in Terms of Wall Proximity. Sakarya University Journal of Science 29 5 592–601.
IEEE İ. Göktepeli, M. İspir, and M. H. Aksoy, “Flow Patterns Around a Sphere in Terms of Wall Proximity”, SAUJS, vol. 29, no. 5, pp. 592–601, 2025, doi: 10.16984/saufenbilder.1704126.
ISNAD Göktepeli, İlker et al. “Flow Patterns Around a Sphere in Terms of Wall Proximity”. Sakarya University Journal of Science 29/5 (October2025), 592-601. https://doi.org/10.16984/saufenbilder.1704126.
JAMA Göktepeli İ, İspir M, Aksoy MH. Flow Patterns Around a Sphere in Terms of Wall Proximity. SAUJS. 2025;29:592–601.
MLA Göktepeli, İlker et al. “Flow Patterns Around a Sphere in Terms of Wall Proximity”. Sakarya University Journal of Science, vol. 29, no. 5, 2025, pp. 592-01, doi:10.16984/saufenbilder.1704126.
Vancouver Göktepeli İ, İspir M, Aksoy MH. Flow Patterns Around a Sphere in Terms of Wall Proximity. SAUJS. 2025;29(5):592-601.


INDEXING & ABSTRACTING & ARCHIVING

33418 33537  30939     30940 30943 30941  30942  33255    33253  33254

30944  30945  30946   34239




30930Bu eser Creative Commons Atıf-Ticari Olmayan 4.0 Uluslararası Lisans   kapsamında lisanslanmıştır .