International Journal of
Physical Sciences

  • Abbreviation: Int. J. Phys. Sci.
  • Language: English
  • ISSN: 1992-1950
  • DOI: 10.5897/IJPS
  • Start Year: 2006
  • Published Articles: 2572

Full Length Research Paper

Effect of an axial magnetic field on the heat and mass transfer in rotating annulus

Sofiane ABERKANE
  • Sofiane ABERKANE
  • Département Energétique, Faculté des sciences de l’ingénieur, Université M’Hamed Bougara de Boumerdés-35000, Algérie.
  • Google Scholar
Malika IHDENE
  • Malika IHDENE
  • Université de Yahia Farès, Médéa- 26000, Algérie.
  • Google Scholar
Mourad MODERES
  • Mourad MODERES
  • Faculté des hydrocarbures et de la chimie, Université M’Hamed Bougara de Boumerdés-35000, Algérie.
  • Google Scholar
Abderahmane GHEZAL
  • Abderahmane GHEZAL
  • Laboratoire de mécanique des fluides théorique et appliquée, Faculté de physique, Université des sciences et de la technologie de Houari Boumediene Bab Ezzouar, Alger-16111, Algérie.
  • Google Scholar


  •  Received: 27 May 2014
  •  Accepted: 04 August 2014
  •  Published: 30 August 2014

References

Aminfar H, Mohammadpourfard M, Maroofiazar R (2014). Experimental study on the effect of magnetic field on critical heat Flux of ferrofluid flow boiling in a vertical annulus. Exper. thermal. fluid sci. 
 
Ashorynejad Hamid RA, Mohamad A, Sheikholeslami M (2013), Magnetic field effects on natural convection flow of a nanofluid in a horizontal cylindrical annulus using Lattice Boltzmann method. Int. J. Thermal Sci. pp. 240-250.
Crossref
 
Azim MA, Mamun AA, Rahman MM (2010). Viscous Joule heating MHD–conjugate heat transfer for a vertical flat plate in the presence of heat generation, Int. Commun. Heat Mass Transfer 37:666–67.
Crossref
 
Ben HH, Henry D (1996). Numerical simulation of convective three-dimensional flows in a horizontal cylinder under the action of a constant magnetic field. J. Cryst. Growth 166:436-673. 
 
Bessaïh R, Boukhari A, Marty PH (2009). Magnetohydrodynamics stability of a rotating flow with heat transfer. Int. Commun. Heat. Mass Transfer 36:893-901.
Crossref
 
Hayat T, Kara AH (2006). Couette flow of a third-grade fluid with variable magnetic field. Math. Compute. Modeling 43:132–137.
Crossref
 
El-Amin MF (2003). Combined effect of viscous dissipation and joule heating on MHD forced convection over a non-isothermal horizontal cylinder embedded in a fluid saturated porous medium. J. Magnet. Magnetic Mater. 263:337–343.
Crossref
 
Ellahi R, Hayat T, Mahomed FM, Zeeshan A (2010). Analytic solutions for MHD flow in an annulus. Commun. Nonlinear. Sci. Numer. Simulat. 15:1224–1227.
Crossref
 
Feiz-Dizaji A, Salimpour MR, Jam F (2008). Flow field of a third-grade non-Newtonian fluid in the annulus of rotating concentric cylinders in the presence of magnetic field. J. Math. Anal. Appl. 337:32–645.
Crossref
 
Ghezal A, Porterie B (2011). Loraud J.C., Etude dynamique et thermique d'un écoulement pulsé en présence d'un solide chauffé en rotation. Mécanique Industries 12:45-65.
Crossref
 
Molki M, Astill KN, Leal E (1990). Convective heat-mass transfer in the Convective heat-mass transfer in the entrance region of a concentric annulus having a rotating inner cylinder entrance. Int. J. Heat. Fluid Flow, 11:2.
Crossref
 
Kakarantzas SC, Sarris IE, Vlachos NS (2011). Natural convection of liquid metal in a vertical annulus with lateral and volumetric heating in the presence of a horizontal magnetic field. Int. J. Heat. Mass Transfer 54:3347-3356.
Crossref
 
Makinde OD, Onyejekwe OO (2011). A numerical study of MHD generalized Couette flow and heat transfer with variable viscosity and electrical conductivity. J. Mag. Magn. Mater. 323:2757–2763.
Crossref
 
Mozayyeni HR, Rahimi AB (2012). Mixed convection in cylindrical annulus with rotating outer cylinder and constant magnetic field with an effect in the radial direction. Scientia Iranica B 19(1)91–105.
Crossref
 
 
Omid M, Shohel M, Ioan P (2012). Analysis of first and second laws of thermodynamics between two isothermal cylinders with relative rotation in the presence of MHD flow. Int. J. Heat Mass Transfer 55:4808–4816. 
 
Peyrret R (1976). Unsteady evolution of horizontal jet in a stratified fluid. J. Fluid mech. 78:(1):49-63.
Crossref
 
Sankar M, Venkatachalappa M, Shivakumara IS (2006). Effect of magnetic field on natural convection in a vertical cylindrical annulus. International J. Eng. Sci. 44:1556–1570.
Crossref
 
Seth GS, Ansari MdS, Nandkeolyar R (2011). Effects of rotation and magnetic field on unsteady Couette flow in a porous channel. J. Appl. Fluid Mech. 4(2):95-103. 
 
Seth GS, Singh JK (2013). Effects of Hall current of unsteady MHD Couette flow of class-II in a rotating system. J. Appl. Fluid Mech. 6(4):473-484. Available online at www.jafmonline.net
 
Sheikholeslami M, Gorji-Bandpy M, Ganji DD, Soleimani S (2013). Effect of a magnetic field on natural convection in an inclined half-annulus enclosure filled with Cu–water nanofluid using CVFEM. Advan. Powder Technol. 24(6):980–991.
Crossref
 
Sheikholeslami M, Gorji-Bandpy M, Ganji DD (2014). MHD free convection in an eccentric semi-annulus filled with nanofluid. J.Taiwan Instit. Chem. Eng. 1204–1216. 
 
Singh SK, Jha BK, Singh AK (1997). Natural convection in vertical concentric annuli under a radial magnetic field. Heat. Mass Transfer, 32:399–401,Springer-Verlag.
Crossref
 
Venkatachalappa M, Do Younghae Sankar M (2011). Effect of magnetic field on the heat and mass transfer in a vertical annulus. Int. J. Eng. Sci.49:262–278.
Crossref
 
Kefeng Shi, Wen-Qiang Lu (2006). Time evolution of double-diffusive convection in a vertical cylinder with radial temperature and axial solutal gradients. Int. J. Heat. Mass Transfer 49:995-1003. 
 
Takhar HS, Chamkha AJ, Nath G (2003). Unsteady mixed convection flow from a rotating vertical cone with a magnetic field, Heat Mass Transfer 39:297–304. 
 
Teamah MA (2007). Numerical simulation of double diffusive laminar mixed convection in a horizontal annulus with hot, solutal and rotating inner cylinder. Int. J. Thermal Sci. 46:637–648.
Crossref