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Numerical Heat Transfer, Part A: Applications
An International Journal of Computation and Methodology
Volume 41, 2002 - Issue 5
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Original Articles

HYDROMAGNETIC COMBINED CONVECTION FLOW IN A VERTICAL LID-DRIVEN CAVITY WITH INTERNAL HEAT GENERATION OR ABSORPTION

Pages 529-546 | Published online: 30 Nov 2010

Keep up to date with the latest research on this topic with citation updates for this article.

Read on this site (28)

MD Shamshuddin, Kanayo Kenneth Asogwa & M. Ferdows. (2023) Thermo-solutal migrating heat producing and radiative Casson nanofluid flow via bidirectional stretching surface in the presence of bilateral reactions. Numerical Heat Transfer, Part A: Applications 0:0, pages 1-20.
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Bengisen Pekmen Geridonmez & Hakan F. Oztop. (2021) Mixed Convection Heat Transfer in a Lid-Driven Cavity under the Effect of a Partial Magnetic Field. Heat Transfer Engineering 42:10, pages 875-887.
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Mohsen Sheikholeslami & Ali J. Chamkha. (2016) Electrohydrodynamic free convection heat transfer of a nanofluid in a semi-annulus enclosure with a sinusoidal wall. Numerical Heat Transfer, Part A: Applications 69:7, pages 781-793.
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Dipankar Chatterjee & Pabitra Halder. (2016) Magnetoconvective Transport in a Lid-Driven Square Enclosure with Two Rotating Circular Cylinders. Heat Transfer Engineering 37:2, pages 198-209.
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Suraj Bansal & Dipankar Chatterjee. (2015) Magneto-Convective Transport of Nanofluid in a Vertical Lid-Driven Cavity Including a Heat-Conducting Rotating Circular Cylinder. Numerical Heat Transfer, Part A: Applications 68:4, pages 411-431.
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Muneer A. Ismael & Ali J. Chamkha. (2015) Mixed Convection in Lid-Driven Trapezoidal Cavities with an Aiding or Opposing Side Wall. Numerical Heat Transfer, Part A: Applications 68:3, pages 312-335.
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Sudipta Ray & Dipankar Chatterjee. (2014) MHD Mixed Convection in a Lid-Driven Cavity Including Heat Conducting Solid Object and Corner Heaters with Joule Heating. Numerical Heat Transfer, Part A: Applications 66:5, pages 530-550.
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Dipankar Chatterjee & Pabitra Halder. (2014) MHD Mixed Convective Transport in Square Enclosure with Two Rotating Circular Cylinders. Numerical Heat Transfer, Part A: Applications 65:8, pages 802-824.
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S. Sivasankaran, V. Sivakumar, Ahmed Kadhim Hussein & P. Prakash. (2014) Mixed Convection in a Lid-Driven Two-Dimensional Square Cavity with Corner Heating and Internal Heat Generation. Numerical Heat Transfer, Part A: Applications 65:3, pages 269-286.
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Dipankar Chatterjee, Bittagopal Mondal & Pabitra Halder. (2014) Hydromagnetic Mixed Convective Transport in a Vertical Lid-Driven Cavity Including a Heat Conducting Rotating Circular Cylinder. Numerical Heat Transfer, Part A: Applications 65:1, pages 48-65.
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Dipankar Chatterjee, Pabitra Halder, Sinchan Mondal & Supratim Bhattacharjee. (2013) Magnetoconvective Transport in a Vertical Lid-Driven Cavity Including a Heat Conducting Square Cylinder with Joule Heating. Numerical Heat Transfer, Part A: Applications 64:12, pages 1050-1071.
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Dipankar Chatterjee. (2013) MHD Mixed Convection in a Lid-Driven Cavity Including a Heated Source. Numerical Heat Transfer, Part A: Applications 64:3, pages 235-254.
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Rehena Nasrin. (2012) Influences of Physical Parameters on Mixed Convection in a Horizontal Lid-Driven Cavity with an Undulating Base Surface. Numerical Heat Transfer, Part A: Applications 61:4, pages 306-321.
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M.M. Rahman, M.M. Billah, M. Hasanuzzaman, R. Saidur & N.A. Rahim. (2012) Heat Transfer Enhancement of Nanofluids in a Lid-Driven Square Enclosure. Numerical Heat Transfer, Part A: Applications 62:12, pages 973-991.
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M.M. Rahman, HakanF. Öztop, N.A. Rahim, R. Saidur & Khaled Al-Salem. (2011) MHD Mixed Convection with Joule Heating Effect in a Lid-Driven Cavity with a Heated Semi-Circular Source Using the Finite Element Technique. Numerical Heat Transfer, Part A: Applications 60:6, pages 543-560.
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Md. Mustafizur Rahman, Mohammad Arif Hasan Mamun & Rahman Saidur. (2011) Analysis of magnetohydrodynamic mixed convection and joule heating in lid-driven cavity having a square block. Journal of the Chinese Institute of Engineers 34:5, pages 585-599.
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S.F. Hosseinizadeh, M. Darbandi & M. Heidarnataj. (2010) Numerical Study of High Gradient Thermobuoyant Flow in a Tilted Cavity Using a Novel Non-Boussinesq Algorithm. Numerical Heat Transfer, Part A: Applications 58:12, pages 984-1003.
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Tien-Mo Shih, Chandrasekhar Thamire, Chao-Ho Sung & An-Lu Ren. (2010) Literature Survey of Numerical Heat Transfer (2000–2009): Part I. Numerical Heat Transfer, Part A: Applications 57:3-4, pages 159-296.
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Ram Satish Kaluri, Tanmay Basak & S. Roy. (2009) Bejan's Heatlines and Numerical Visualization of Heat Flow and Thermal Mixing in Various Differentially Heated Porous Square Cavities. Numerical Heat Transfer, Part A: Applications 55:5, pages 487-516.
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B. Ghasemi & S. M. Aminossadati. (2008) Comparison of Mixed Convection in a Square Cavity with an Oscillating versus a Constant Velocity Wall. Numerical Heat Transfer, Part A: Applications 54:7, pages 726-743.
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Tzer-Ming Jeng & Sheng-Chung Tzeng. (2008) Heat Transfer in a Lid-Driven Enclosure Filled with Water-Saturated Aluminum Foams. Numerical Heat Transfer, Part A: Applications 54:2, pages 178-196.
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M. Darbandi & S. F. Hosseinizadeh. (2007) Numerical Study of Natural Convection in Vertical Enclosures using a Novel Non-Boussinesq Algorithm. Numerical Heat Transfer, Part A: Applications 52:9, pages 849-873.
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Tanmay Basak, S. Roy & H. S. Takhar. (2007) Effects of Nonuniformly Heated Wall(S) on a Natural-Convection Flow in a Square Cavity Filled With a Porous Medium. Numerical Heat Transfer, Part A: Applications 51:10, pages 959-978.
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Chin-Hsiang Cheng & Chin-Lung Chen. (2005) Numerical Study of Effects of Inclination on Buoyancy-Induced Flow Oscillation in a Lid-Driven Arc-Shaped Cavity. Numerical Heat Transfer, Part A: Applications 48:1, pages 77-97.
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