Publication Cover
Numerical Heat Transfer, Part A: Applications
An International Journal of Computation and Methodology
Volume 69, 2016 - Issue 8
698
Views
8
CrossRef citations to date
0
Altmetric
Original Articles

Opposing buoyancy characteristics of Newtonian fluid flow around a confined square cylinder at low and moderate Reynolds numbers

&
Pages 874-897 | Received 14 May 2015, Accepted 20 Jul 2015, Published online: 01 Feb 2016

References

  • A. Sharma and V. Eswaran, Effect of Aiding and Opposing Buoyancy on the Heat and Fluid Flow Across a Square Cylinder at Re = 100, Numer. Heat Transfer A, vol. 45, pp. 601–624, 2004.
  • S. K. Singh, P. K. Panigrahi, and K. Murlidhar, Effect of Buoyancy on the Wakes of Circular, and Square Cylinders, A Schlieren-Interferometric Study, Exp. Fluids, vol. 43, pp. 101–123, 2007.
  • S. L. G. Jassim, Numerical Study of the Mixed Convection Flow Over a Square Cylinder, Iraqi J. Chem. Pet. Eng., vol. 11, pp. 29–45, 2010.
  • N. Sharma, A. K. Dhiman, and S. Kumar, Mixed Convection Flow and Heat Transfer Across a Square Cylinder Under the Influence of Aiding Buoyancy at Low Reynolds Numbers, Int. J. Heat Mass Transfer, vol. 55, pp. 2601–2614, 2012.
  • S. Sarkar, S. Ganguly, and A. Dalal, Buoyancy Driven Flow and Heat Transfer of Nanofluids Past a Square Cylinder in Vertically Upward Flow, Int. J. Heat Mass Transfer, vol. 59, pp. 433–450, 2013.
  • S. Sarkar, S. Ganguly, A. Dalal, P. Saha, and S. Chakraborty, Mixed Convective Flow Stability of Nanofluids Past a Square Cylinder by Dynamic Mode Decomposition, Int. J. Heat Mass Transfer, vol. 44, pp. 624–634, 2013.
  • S. Sarkar, S. Ganguly, and G. Biswas, Buoyancy Driven Convection of Nanofluids in an Infinitely Long Channel Under the Effect of a Magnetic Field, Int. J. Heat Mass Transfer, vol. 71, pp. 328–340, 2014.
  • D. Chatterjee, Dual Role of Thermal Buoyancy in Controlling Boundary Layer Separation Around Bluff Obstacles, Int. Comm. Heat Mass Transfer, vol. 56, pp. 152–158, 2014.
  • A. Sharma and V. Eswaran, Effect of Channel-Confinement and Aiding/Opposing Buoyancy on the Two-Dimensional Laminar Flow and Heat Transfer Across a Square Cylinder, Int. J. Heat Mass Transfer, vol. 48, pp. 5310–5322, 2005.
  • D. Chatterjee and B. Mondal, Effect of Thermal Buoyancy on the Two-Dimensional Upward Flow and Heat Transfer Around a Square Cylinder, Heat Transfer Eng., vol. 33, pp. 1063–1074, 2012.
  • A. Dhiman, N. Sharma, and S. Kumar, Buoyancy-Aided Momentum and Heat Transfer in a Vertical Channel with a Built-in Square Cylinder, Int. J. Sustainable Energy, vol. 33, pp. 963–984, 2014.
  • S. Bhattacharyya and S. Mahapatra, Vortex Shedding Around a Heated Square Cylinder Under the Influence of Buoyancy, Heat Mass Transfer, vol. 41, pp. 824–833, 2005.
  • A. K. Dhiman, N. Anjaiah, R. P. Chhabra, and V. Eswaran, Mixed Convection from a Heated Square Cylinder to Newtonian and Power-Law Fluids, ASME J. Fluids Eng., vol. 129, pp. 506–513, 2007.
  • D. Chatterjee and B. Mondal, Effect of Thermal Buoyancy on Vortex Shedding Behind a Square Cylinder in Cross Flow at Low Reynolds Numbers, Int. J. Heat Mass Transfer, vol. 54, pp. 5262–5274, 2011.
  • J. P. Dulhani, S. Sarkar, and A. Dalal, Effect of Angle of Incidence on Mixed Convective Wake Dynamics and Heat Transfer Past a Square Cylinder in Cross Flow at Re = 100, Int. J. Heat Mass Transfer, vol. 74, pp. 319–332, 2014.
  • G. Biswas, H. Laschefski, N. K. Mitra, and M. Fiebig, Numerical Investigation of Mixed Convection Heat Transfer in a Horizontal Channel with a Built-in Square Cylinder, Numer. Heat Transfer A, vol. 18, pp. 173–188, 1990.
  • S. Turki, H. Abbassi, and S. B. Nasrallah, Two-Dimensional Laminar Fluid Flow and Heat Transfer in a Channel with a Built-in Heated Square Cylinder, Int. J. Therm. Sci., vol. 42, pp. 1105–1113, 2003.
  • A. K. Dhiman, R. P. Chhabra, V. Eswaran, Steady Mixed Convection Across a Confined Square Cylinder, Int. Comm. Heat Mass Transfer, vol. 35, pp. 47–55, 2008.
  • A. K. Dhiman, N. Sharma, and S. Kumar, Wall Effects on the Cross-Buoyancy Around a Square Cylinder in the Steady Regime, Brazilian J. Chem. Eng., vol. 29, pp. 253–264, 2012.
  • D. Chatterjee, G. Biswas, and S. Amiroudine, Mixed Convection Heat Transfer from an In-Line Row of Square Cylinders in Cross-Flow at Low Reynolds Number, Numer. Heat Transfer A, vol. 61, pp. 891–911, 2012.
  • D. Chatterjee and S. K. Gupta, Convective Transport Around Rows of Square Cylinders Arranged in a Staggered Fashion at Moderate Reynolds Number, Numer. Heat Transfer A, vol. 68, pp. 388–410, 2015.
  • D. Chatterjee and G. Biswas, The Effects of Reynolds and Prandtl Numbers on Flow and Heat Transfer Across Tandem Square Cylinders in the Steady Flow Regime, Numer. Heat Transfer A, vol. 59, pp. 421–437, 2011.
  • D. Chatterjee and B. Mondal, Forced Convection Heat Transfer from Tandem Square Cylinders for Various Spacing Ratios, Numer. Heat Transfer A, vol. 61, pp. 381–400, 2012.
  • D. Chatterjee and B. Mondal, Mixed Convection Heat Transfer from Tandem Square Cylinders for Various Gap to Size Ratios, Numer. Heat Transfer A, vol. 63, pp. 101–119, 2013.
  • A. Sharma and V. Eswaran, Effect of Channel Confinement on the Two-Dimensional Laminar Flow and Heat Transfer Across a Square Cylinder, Numer. Heat Transfer A, vol. 47, pp. 79–107, 2005.
  • A. K. Dhiman, R. P. Chhabra, and V. Eswaran, Flow and Heat Transfer Across a Confined Square Cylinder in the Steady Flow Regime: Effect of Peclet Number, Int. J. Heat Mass Transfer, vol. 48, pp. 4598–4614, 2005.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.