Sains Malaysiana 41(9)(2012): 1139–1148
Investigation of Heat Mass Transfer for Combined
Convective Slips Flow: A Lie
Group Analysis
(Kajian Pemindahan Haba dan
Jisim Bagi Aliran Berolak Gabungan Gelincir: Analisis
Kumpulan Lie)
Md. Jashim Uddin1,*, M. M.Hamad2 & A.I. Md.
Ismail1
1School of
Mathematical Sciences, Universiti Sains Malaysia, Penang 11800, Malaysia
2Mathematics
Department, Faculty of Science, Assiut University, Assiut, 71516, Egypt
Received: 17
November 2011 / Accepted: 21 May 2012
ABSTRACT
The steady laminar combined
convective flow with heat and mass transfer of a Newtonian viscous
incompressible fluid over a permeable flat plate with linear hydrodynamic and
thermal slips has been investigated numerically. The velocity of the external flow,
the suction/injection velocity and the temperature of the plate surface are
assumed to vary nonlinearly following the power law with the distance along the
plate from the origin. Lie group analysis is used to develop the similarity
transformations and the governing momentum, the energy conservation and the
mass conservation equations are converted to a system of coupled nonlinear
ordinary differential equations with the associated boundary conditions. The
resulting equations are solved numerically using the Runge-Kutta-Fehlberg
fourth-fifth order numerical method. The effects of hydrodynamic slip parameter
(a), thermal slip parameter (b), suction/injection parameter (fw), power law
parameter (m), buoyancy ratio parameter (N), Prandtl number (Pr) and Schmidt
number (Sc) on the fluid flow, heat transfer and mass transfer characteristics
are investigated and presented graphically. We have also shown the effects of
the Reynolds number (Re) and the power law parameter (m) on the velocity slip
and the thermal slip factors. Good agreement is found between the numerical
results of the present paper and published results.
Keywords: Combined convective flow;
heat and mass transfer; hydrodynamic and thermal slip; Lie group
ABSTRAK
Aliran berolak tergabung yang mantap
dan berlamina dengan pemindahan haba dan jisim bagi suatu bendalir Newtonan
likat tak mampat ke atas plat rata yang telap dengan gelinciran linear
hidrodinamik dan haba dikaji secara berangka. Halaju aliran luar, halaju
sedutan/semburan dan suhu permukaan plat diandaikan berubah terhadap jarak
sepanjang plat dari asalan secara tak linear mengikut hukum kuasa. Analisis Kumpulan Lie digunakan untuk memperoleh penjelmaan
keserupaan dan persamaan momentum, keabadian tenaga dan keabadian jisim ditukar
kepada sistem persamaan pembezaan biasa tak linear dengan syarat sempadan yang
sepadan. Persamaan yang terhasil diselesaikan
menggunakan kaedah berangka Runge-Kutta-Fehlberg peringkat keempat-kelima. Kesan parameter gelincir halaju a, parameter gelincir haba b, parameter
sedutan/semburan (fw), parameter hukum kuasa m, parameter keapungan N, nombor
Prandtl (Pr) dan nombor Schmidt (Sc) terhadap aliran bendalir, pemindahan haba
dan pemindahan jisim dikaji dan dibentangkan secara bergraf. Kami
juga mempamerkan kesan nombor Reynolds Re dan parameter hukum kuasa (m) ke atas
faktor gelincir halaju dan faktor gelincir haba. Keputusan
berangka dalam makalah ini didapati menepati keputusan yang telah diperoleh
dalam penerbitan sebelum ini.
Kata kunci: Gelincir hidrodinamik dan haba; kumpulan Lie; olakan
campuran; pemindahan haba dan jisim gabungan
REFERENCES
Abbas, Z. & Hayat, T. 2009. Stagnation
slip flow and heat transfer over a nonlinear stretching sheet. Numerical
Methods for Partial differential Equations 27(2): 302-314.
Ali, F.M., Nazar, R., Arifin, N.M. & Pop, I. 2011. MHD mixed
convection boundary layer flow toward a stagnation point on a vertical surface
with induced magnetic field. Journal of Heat Transfer 133: 022502-8.
Anderson,
H.I. 2002. Slip flow past a stretching surface. Acta Mechanica 158:
121-125.
Ayd?n, O.
& Kaya, A. 2007. Mixed convection of a viscous
dissipating fluid about a vertical flat plate. Applied
Mathematical Modelling 31: 843-853.
Aziz, A. 2009. A similarity
solution for laminar thermal boundary over a flat plate with a convective
boundary condition. Communications in Nonlinear Science and Numerical
Simulations 15: 1064-1068.
Aziz, A. 2010. Hydrodynamic and thermal slip flow
boundary layers over a flat plate with constant heat flux boundary condition. Communications
in Nonlinear Science and Numerical Simulations 15: 573-580.
Cao, K.
& Baker. J. 2009. Slip effects on mixed convective flow and heat transfer
from a vertical plate. International Journal of Heat and Mass Transfer 52:
3829-3841.
Deswita, L., Nazar, R., Ishak, A., Ahmad, R. & Pop, I. 2010. Mixed
convection boundary layer flow past a wedge with permeable walls. Heat Mass
Transfer 46: 1013-1018.
Devi, C.D.S., Takhar, H.S. & Nath, G. 1991. Unsteady
mixed convection flow in stagnation region adjacent to a vertical surface. Heat
Mass Transfer 26: 71-79.
Fang, T.
& Lee, C.F., 2005. A moving wall boundary layer flow of a slightly rarefied
gas free stream over a moving flat plate. Applied Mathematics Letter 18:
487-95.
Fang, T.,
Zhang, J. & Yao, S. 2009. Slip MHD viscous flow over a stretching sheet a exact solution. Communications in Nonlinear Science and
Numerical Simulation 14: 3731-3737.
Hak, G.M.
2002. In Flow Physics in the MEMS Handbook, edited by Gad-el-Hah, M.
Boca Raton, FL: CRC Press.
Hamad,
M.A.A., Uddin, M.J. & Ismail, A.I.M. 2012. Investigation of combined heat
and mass transfer by Lie group analysis with variable diffusivity taking into
account hydrodynamic slip and thermal convective boundary conditions, International
Journal of Heat and Mass Transfer 55: 1355-62.
Hassanien,
I.A. & Gorla, R.S.R. 1990. Combined forced and free convection in
stagnation flows of micropolar fluids over vertical non-isothermal surfaces. International
Journal of Engineering Science 28: 783-792.
Ibrahim,
F.S, Mansour, M.A. & Hamad, M.A.A., 2007. Similarity
solution of laminar flow due to a rotating frustum of a cone. Journal
of the Egyptian Mathematical Society 15: 233-245.
Incropera,
Dewitt, Bergman & Lavine. 2007. Fundamentals of Heat and Mass Transfer.
(6th ed). New York: John Wiley.
Ishak, A., Nazar, R., Bachok, N. & Pop, I. 2010. MHD mixed
convection flow near the stagnation-point on a vertical permeable surface. Physica
A 389: 40-46.
Jalil, M., Asghar, S. & Mushtaq, M. 2010. Lie group
analysis of mixed convection flow with mass transfer over a stretching surface
with suction or injection. Mathematical Problems in Engineering 2010:
264901-16.
Lai, F.C.
1991. Couple heat and mass transfer by mixed convection from a vertical plate
in a saturated porous media. International Communication Heat Mass Transfer 18:
93-106.
Lok, Y.Y., Amin, N., Campean, D. & Pop, I., 2005. Steady
mixed convection flow of a micropolar fluid near the stagnation point on a
vertical surface. International Journal of Numerical Methods for Heat Fluid
Flow 15: 654-670.
Lloyd, J.R.
& Sparrow, E.M. 1970. Combined forced and free convection flow on vertical
surfaces, International Journal of Heat Mass Transfer 13: 434-438.
Mahmoud,
M.A.A. 2010. Flow and heat transfer of a slightly rarefied gas over a
stretching surface. Meccanica 45: 911-916.
Martin, M.J. & Boyd I.D. 2009. Falkner-Skan flow over a wedge with slip boundary conditions. 47th
AIAA Aerospace Sciences Meeting Including The New Horizons Forum and Aerospace
Exposition, 5-8 January, Orlando, Florida.Martin, M.J. & Boyd, I.D.
2010. Falkner-Skan flow over a wedge with slip boundary conditions. AIAA Journal of Thermo Physics and Heat Transfer 24(2):
263-270.
Mattews,
M.T. & Hill, J.M. 2007. Micro/nano thermal boundary layer equations with
slip–creep–jump boundary conditions. IMA Journal of Applied
Mathematics 72: 894-911.
Moulic, G.S.
& Yao, L.S. 1989. Mixed convection along a wavy surface. Journal of Heat Transfer 111(4): 974-979.
Moulic, G.S.
& Yao, L.S., 2009. Mixed convection along a semi-Infinite
vertical flat plate with uniform surface heat flux. Journal of Heat
Transfer 131(2): 022502-1-8.
Mukhopadhyay,
S. & Anderson, H.I. 2009. Effects of slip and heat transfer analysis of
flow over an unsteady stretching surface. Heat Mass Transfer 45:
1447-1452.
Pandey, M., Pandey, B.D. & Sharma, V.D. 2009. Symmetry groups and similarity solutions for the system of
equations for a viscous compressible fluid. Applied Mathematics and
Computation 215: 681-685.
Rahman, M.M.
2010. Locally similar solutions for hydromagnetic and thermal slip flow
boundary layers over a flat plate with variable fluid properties and convective
surface boundary condition. Meccanica DOI 10.1007/s11012-010-9372-2.
Ramachandran,
N. Chen, T.S. & Armaly, B.F. 1988. Mixed convection in stagnation flows
adjacent to a vertical surfaces. ASME Journal of
Heat Transfer 110: 373-377.
Sahoo, B. 2010. Flow and heat transfer of a
non-Newtonian fluid past a stretching sheet with partial slip. Communications
in Nonlinear Science and Numerical Simulations 15: 602-615.
Sengupta,
T.K., Unnikrishnan, S., Bhaumik, S., Singh, P. & Usman, S. 2011. Linear spatial stability analysis of mixed convection boundary
layer over a heated plate. Progress in Applied Mathematics 1:
71-89.
Singh, N.P.,
Singh, A.K., Singh, A.K. & Agnihotri, P. 2011. Effects of thermophoresis on
hydromagnetic mixed convection and mass transfer flow past a vertical permeable
plate with variable suction and thermal radiation. Communications in Nonlinear
Science and Numerical Simulation 16: 2519-2534
Subhashini,
S.V., Samuel, N. & Pop, I. 2011. Effects of buoyancy assisting and opposing
flows on mixed convection boundary layer flow over a permeable vertical
surface. International Communications in Heat and Mass Transfer 38:
499-503
Wang, C.Y.
2009. Analysis of viscous flow due to stretching sheet with
surface slip and suction. Nonlinear Analysis and Real World
Applications 10: 375-80.
White, R.E.
& Subramanian, V.R. 2010. Computational Methods in
Chemical Engineering with Maple. N.Y: Springer
Wilks, G.
1973. Combined forced and free convection flow on vertical surfaces. International
Journal of Heat Mass Transfer 16: 1958-1964.
Yao, L.S.
1987. Two-Dimensional mixed convection along a flat plate. Journal of Heat Transfer 109: 440-445.
*Corresponding author; email: jasihim_74@yahoo.com