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Articles

Numerical Studies on Natural Convection in a Trapezoidal Enclosure With Discrete Heating

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References

  • R. Manikumar, R. Palanichamy, and A. Valan Arasu, “Heat transfer analysis of an elevated linear absorber with trapezoidal cavity in the linear Fresnel reflector solar concentrator system,” J. Thermal Sci., vol. 24, no. 1, pp. 90–98, 2015.
  • B. Calcagni, F. Marsili, and M. Paroncini, “Natural convection heat transfer in square enclosures heated form below,” J. Appl. Thermal Eng., vol. 25, no. 16, pp. 2522–2531, 2005.
  • K. Aparna, and K. N. Seetharamu, “Investigations on the effect of non-uniform temperature on fluid flow and heat transfer in a trapezoidal cavity filled with porous media,” Int. J. Heat Mass Transfer, vol. 108, pp. 63–78, 2017.
  • A. I. Alsabery, A. J. Chamkha, S. H. Hussain, H. Saleh, and I. Hashim, “Heat line visualization of natural convection in a trapezoidal cavity partly filled with Nano-Fluid porous layer and partly with Non-Newtonian fluid layer,” J. Adv. Powder Technol., vol. 26, no. 4, pp. 1230–1244, 2015.
  • L. Iyican, Y. Bayazitoglu, and L. C. Witte, “An analytical study of natural convection heat transfer with trapezoidal enclosure,” ASME J. Heat Transfer, vol. 102, no. 4, pp. 640–647, 1980.
  • M. Peric, “Natural convection in trapezoidal cavities,” Numer. Heat Transfer Part A, vol. 24, no. 2, pp. 213–219, 1993.
  • A. Valencia, and R. L. Frederick, “Heat transfer in a square cavities with partially active vertical walls,” Int. J. Heat Mass Transfer, vol. 32, no. 8, pp. 1567–1574, 1989.
  • T. Basak, S. Roy, and A. R. Balakrishnan, “Effect of thermal boundary conditions on natural convection flows with in a square cavity,” Int. J. Heat Mass Transfer, vol. 49, no. 23–24, pp. 4525–4535, 2006.
  • Lo, D. C. Young, D. L. Tsai, and C. C. “High resolution of 2D natural convection in a cavity by DQ method,” J. Comput. Appl. Math., vol. 203, no. 1, pp. 219–236, 2007.
  • Aswatha, Gangadhara Gowda, C. J. Sridhara, S. N. Seetharamu, and K. N. “Buoyancy driven heat transfer in cavities subjected to thermal boundary conditions at bottom wall,” J. Appl. Fluid Mech., vol. 5, no. 2, pp. 43–53, 2012.
  • A. Liqat, and A. C. Baytas, “Conjugate natural convection in a square enclosure containing volumetric sources,” Int. J. Heat Mass Transfer, vol. 44, no. 17, pp. 3273–3280, 2001.
  • X. Xu, Z. Yu, Y. Hu, L. Fan, K. Cen, and A. “Numerical, “Study of laminar natural convective heat transfer around a horizontal cylinder inside a concentric air filled triangular enclosure,” Int. J. Heat Mass Transfer, vol. 53, no. 1-3, pp. 345–355, 2010.
  • W. R. Chen, “Natural convection heat transfer between inner sphere and outer vertically concentric cylinder,” Int. J. Heat Mass Transfer, vol. 53, no. 23-24, pp. 5147–5155, 2010.
  • L. Iyican, L. C. Witte, and Y. Bayazitoglu, “An experimental study of natural convection in trapezoidal enclosures,” ASME J. Heat Transfer, vol. 102, no. 4, pp. 648–653, 1980.
  • S. W. Lam, R. Gani, and J. G. Symons, “Experimental and numerical studies of natural convection in trapezoidal cavities”, trans. ASME,” J. Heat Transfer, vol. 111, no. 2, pp. 372–377, 1989.
  • R. A. Kuyper, and C. J. Hoogendoorn, “Laminar natural convection flow in trapezoidal enclosures,” Numer. Heat Transfer Part A, vol. 28, no. 1, pp. 57–67, 1995.
  • F. Moukalled, and M. Darviwash, “Natural convection in a partitioned trapezoidal cavity heated from the side,” Numer. Heat Transfer Part A, vol. 43, no. 5, pp. 543–563, 2003.
  • F. Moukalled, and M. Darviwash, “Natural convection in a trapezoidal enclosures heated from the side with a baffle mounted on its upper inclined surface,” Numer. Heat Transfer Part A, vol. 25, no. 8, pp. 80–93, 2004.
  • E. Natarajan, S. Roy, and T. Basak, “Effect of various thermal boundary conditions on natural convection in a trapezoidal cavity with linearly heated side wall(S),” Numer. Heat Transfer Part B, vol. 52, no. 6, pp. 551–568, 2007.
  • E. Natarajan, T. Basak, and S. Roy, “Natural convection flows in a trapezoidal enclosure with uniform and non-uniform heating of bottom wall,” Int. J. Heat Mass Transfer, vol. 51, no. 3-4, pp. 747–756, 2008.
  • K. Lasfer, M. Bouzaiane, and T. Lili, “Numerical study of laminar natural convection in a side heated trapezoidal cavity at various inclined heated side walls,” Heat Transfer Eng., vol. 31, no. 5, pp. 362–373, 2010.
  • Y. Varol, “Natural convection for hot materials confined within two entrapped porous trapezoidal cavities,” Int. Commun. Heat Mass Transfer, vol. 39, no. 2, pp. 282–290, 2012.
  • A. K. Hussein, “Finite volume simulation of natural convection in a trapezoidal cavity filled with various fluids and heated from the top wall,” Univer. J. Fluid Mech., Vol. 1, pp. 24, vol. 36, 2013.
  • M. A. R. Sharif, and T. R. Mohammad, “Natural convection in cavities with constant flux heating at the bottom wall and isothermal cooling from the side walls,” Int. J. Thermal Sci., vol. 44, no. 9, pp. 865–878, 2005.
  • M. M. Gholizadeh, R. Nikbakhti, J. Khodakhah, and A. Ghasemi, “Numerical study of double diffusive buoyancy forces induced natural convection in a trapezoidal enclosure partially heated from the right side wall,” Alexandria Eng. J., vol. 55, no. 2, pp. 779–795, 2016.
  • E. F. Kent, “Laminar natural convection in isosceles triangular roofs in wintertime conditions,” Heat Transfer Eng., vol. 31, no. 13, pp. 1068–1081, 2010.
  • M. Mohammadi, and S. A. G. Nassab, “Effect of radiation on mixed convection inside a Lid-Driven square cavity with various optical thicknesses and Richardson numbers,” Heat Transfer Eng., vol. 38, no. 6, pp. 653–665, 2017.
  • F. P. Incropera, “Convection heat transfer in electronic equipment cooling,” J. Heat Transfer, vol. 110, no. 4b, pp. 1097–1111, 1988.
  • E. Bilgen, and A. Balkaya, “Natural convection on discrete heaters in a square enclosure with ventilation ports,” Int. J. Heat Fluid Flow, vol. 29, no. 4, pp. 1182–1189, 2008.
  • S. V. Patankar, Numerical Heat Transfer and Fluid Flow. McGraw-Hill, New York, 1980.
  • ANSYS FLUENT User’s Guide, ANSYS, Inc., Southpointe 275, Technology Drive Canonsburg, PA, 15317, 2011.
  • G. K. Batchelor, An Introduction to Fluid Dynamics. Cambridge University Press, Cambridge, UK, 1993.
  • R. I. Issa, “Solution of the implicitly discretized fluid flow equations by operator splitting”, J. Comput. Phys., vol. 62, no. 1, pp. 40–65, 1986.

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