Full Text:   <14560>

CLC number: TK123; O35

On-line Access: 2012-06-28

Received: 2011-05-02

Revision Accepted: 2011-08-11

Crosschecked: 2012-09-18

Cited: 10

Clicked: 9514

Citations:  Bibtex RefMan EndNote GB/T7714

-   Go to

Article info.
Open peer comments

Journal of Zhejiang University SCIENCE A 2012 Vol.13 No.10 P.768-781

http://doi.org/10.1631/jzus.A1100122


An exact analytical solution for convective heat transfer in rectangular ducts


Author(s):  Mohammad Mohsen Shahmardan, Mahmood Norouzi, Mohammad Hassan Kayhani, Amin Amiri Delouei

Affiliation(s):  Department of Mechanical Engineering, Shahrood University of Technology, Shahrood, Iran

Corresponding email(s):   norouzi.mahmood@gmail.com

Key Words:  Exact analytical solution, Convective heat transfer, Straight duct, Rectangular cross-section, Constant heat flux


Mohammad Mohsen Shahmardan, Mahmood Norouzi, Mohammad Hassan Kayhani, Amin Amiri Delouei. An exact analytical solution for convective heat transfer in rectangular ducts[J]. Journal of Zhejiang University Science A, 2012, 13(10): 768-781.

@article{title="An exact analytical solution for convective heat transfer in rectangular ducts",
author="Mohammad Mohsen Shahmardan, Mahmood Norouzi, Mohammad Hassan Kayhani, Amin Amiri Delouei",
journal="Journal of Zhejiang University Science A",
volume="13",
number="10",
pages="768-781",
year="2012",
publisher="Zhejiang University Press & Springer",
doi="10.1631/jzus.A1100122"
}

%0 Journal Article
%T An exact analytical solution for convective heat transfer in rectangular ducts
%A Mohammad Mohsen Shahmardan
%A Mahmood Norouzi
%A Mohammad Hassan Kayhani
%A Amin Amiri Delouei
%J Journal of Zhejiang University SCIENCE A
%V 13
%N 10
%P 768-781
%@ 1673-565X
%D 2012
%I Zhejiang University Press & Springer
%DOI 10.1631/jzus.A1100122

TY - JOUR
T1 - An exact analytical solution for convective heat transfer in rectangular ducts
A1 - Mohammad Mohsen Shahmardan
A1 - Mahmood Norouzi
A1 - Mohammad Hassan Kayhani
A1 - Amin Amiri Delouei
J0 - Journal of Zhejiang University Science A
VL - 13
IS - 10
SP - 768
EP - 781
%@ 1673-565X
Y1 - 2012
PB - Zhejiang University Press & Springer
ER -
DOI - 10.1631/jzus.A1100122


Abstract: 
An exact analytical solution is obtained for convective heat transfer in straight ducts with rectangular cross-sections for the first time. This solution is valid for both H1 and H2 boundary conditions, which are related to fully developed convective heat transfer under constant heat flux at the duct walls. The separation of variables method and various other mathematical techniques are used to find the closed form of the temperature distribution. The local and mean Nusselt numbers are also obtained as functions of the aspect ratio. A new physical constraint is presented to solve the Neumann problem in non-dimensional analysis for the H2 boundary conditions. This is one of the major innovations of the current study. The analytical results indicate a singularity occurs at a critical aspect ratio of 2.4912 when calculating the local and mean Nusselt numbers.

Darkslateblue:Affiliate; Royal Blue:Author; Turquoise:Article

Reference

[1]Bahrami, M., Tamayol, A., Taheri, P., 2009. Slip-flow pressure drop in microchannels of general cross section. Journal of Fluids Engineering, 131(3):031201.

[2]Barletta, A., Rossi di Schio, E., Zanchini, E., 2003. Combined forced and free flow in a vertical rectangular duct with prescribed wall heat flux. International Journal of Heat and Fluid Flow, 24(6):874-887.

[3]Bejan, A., 2004. Convection Heat Transfer (3rd Edition). Wiley, New York.

[4]Chang, S.W., Yang, T.L., Huang, R.F., Sung, K.C., 2007. Influence of channel-height on heat transfer in rectangular channels with skewed ribs at different bleed conditions. International Journal of Heat and Mass Transfer, 50(23-24):4581-4599.

[5]Chen, H.J., Zhang, B.Z., Zhang, J.S., 2003. Fluid flow in rotating helical square ducts. Journal of Hydrodynamics Series B, 15(3):49-56.

[6]Chen, H.J., Shen, X.R., Zhang, B.Z., 2004. The laminar flow and heat transfer in the developing region of helical square ducts. Journal of Hydrodynamics Series B, 16(3):267-275.

[7]Cheng, C.Y., 2006. The effect of temperature-dependent viscosity on the natural convection heat transfer from a horizontal isothermal cylinder of elliptic cross section. International Communications in Heat and Mass Transfer, 33(8):1021-1028.

[8]Haji-Sheikh, A., Nield, D.A., Hooman, K., 2006. Heat transfer in the thermal entrance region for flow through rectangular porous passages. International Journal of Heat and Mass Transfer, 49(17-18):3004-3015.

[9]Hooman, K., 2008. A perturbation solution for forced convection in a porous-saturated duct. Journal of Computational and Applied Mathematics, 211(1):57-66.

[10]Hooman, K., 2009. Slip flow forced convection in a microporous duct of rectangular cross-section. Applied Thermal Engineering, 29(5-6):1012-1019.

[11]Hooman, K., Haji-Sheikh, A., 2007. Analysis of heat transfer and entropy generation for a thermally developing Brinkman-Brinkman forced convection problem in a rectangular duct with isoflux walls. International Journal of Heat and Mass Transfer, 50(21-22):4180-4194.

[12]Hooman, K., Gurgenci, H., Merrikh, A.A., 2007. Heat transfer and entropy generation optimization of forced convection in porous-saturated ducts of rectangular cross-section. International Journal of Heat and Mass Transfer, 50(11-12):2051-2059.

[13]Iacovides, H., Kelemenis, G., Raisee, M., 2003. Flow and heat transfer in straight cooling passages with inclined ribs on opposite walls: an experimental and computational study. Experimental Thermal and Fluid Science, 27(3):283-294.

[14]Jarungthammachote, S., 2010. Entropy generation analysis for fully developed laminar convection in hexagonal duct subjected to constant heat flux. Energy, 35(12):5374-5379.

[15]Jaurker, A.R., Saini, J.S., Gandhi, B.K., 2006. Heat transfer and friction characteristics of rectangular solar air heater duct using rib-grooved artificial roughness. Solar Energy, 80(8):895-907.

[16]Kays, W.M., Crawford, M.E., Weigand, B., 2005. Convective Heat and Mass Transfer (4th Edition). McGraw-Hill, New York.

[17]Ko, T.H., Ting, K., 2006. Entropy generation and optimal analysis for laminar forced convection in curved rectangular ducts: A numerical study. International Journal of Thermal Sciences, 45(2):138-150.

[18]Kurnia, J.C., Sasmito, A.P., Mujumdar, A.S., 2011. Evaluation of the heat transfer performance of helical coils of non-circular tubes. Journal of Zhejiang University-SCIENCE A (Applied Physics & Engineering), 12(1):63-70.

[19]Lyczkowski, R.W., Solbring, C.W., Gidaspow, D., 1982. Forced convection heat transfer in rectangular ducts-general case of wall resistances and peripheral conduction for ventilation cooling of nuclear waste repositories. Nuclear Engineering and Design, 67(3):357-378.

[20]Ma, J.F., Shen, X.R., Zhang, B.Z., Chen, H.J., 2005. Numerical analysis on the fluid flow in a rotating curved elliptical pipe. Journal of Hydrodynamics Series B, 17(2):171-178.

[21]Ma, J.F., Shen, X.R., Zhang, M.K., Zhang, B.Z., 2006. Laminar developing flow in the entrance region of rotating curved pipes. Journal of Hydrodynamics Series B, 18(4):418-423.

[22]Montgomery, S.R., Wibulswas, P., 1996. Laminar Flow Heat Transfer in Ducts of Rectangular Cross-Section. The Third International Heat Transfer Conference, New York, p.85-98.

[23]Myint-U, T., Debnath, L., 2007. Linear Partial Differential Equations for Scientists and Engineers. Birkhauser, Boston.

[24]Nonino, C., DelGiudice, S., Savino, S., 2006. Temperature dependent viscosity effects on laminar forced convection in the entrance region of straight ducts. International Journal of Heat and Mass Transfer, 49(23-24):4469-4481.

[25]Norouzi, M., Kayhani, M.H., Nobari, M.R.H., 2009. Mixed and forced convection of viscoelastic materials in straight duct with rectangular cross section. World Applied Sciences Journal, 7(3):285-296.

[26]Porter, J.E., 1971. Heat transfer at low Reynolds number (highly viscous liquids in laminar flow). Transactions of the Institution of Chemical Engineers, 49:1-29.

[27]Ray, S., Misra, D., 2010. Laminar fully developed flow through square and equilateral triangular ducts with rounded corners subjected to H1 and H2 boundary conditions. International Journal of Thermal Sciences, 49(9):1763-1775.

[28]Rennie, T.J., Vijaya Raghavan, G.S., 2007. Thermally dependent viscosity and non-Newtonian flow in a double-pipe helical heat exchanger. Applied Thermal Engineering, 27(5-6):862-868.

[29]Rosaguti, N.R., Fletcher, D.F., Haynes, B.S., 2007. A general implementation of the H1 boundary condition in CFD simulations of heat transfer in swept passages. International Journal of Heat and Mass Transfer, 50(9-10):1833-1842.

[30]Saha, S.K., 2010. Thermal and friction characteristics of laminar flow through rectangular and square ducts with transverse ribs and wire coil inserts. Experimental Thermal and Fluid Science, 34(1):63-72.

[31]Sakalis, V.D., Hatzikonstantinou, P.M., Kafousias, N., 2002. Thermally developing flow in elliptic ducts with axially variable wall temperature distribution. International Journal of Heat and Mass Transfer, 45(1):25-35.

[32]Sayed-Ahmed, M.E., Kishk, K.M., 2008. Heat transfer for Herschel-Bulkley fluids in the entrance region of a rectangular duct. International Communications in Heat and Mass Transfer, 35(8):1007-1016.

[33]Shah, R.K., 1975. Laminar flow friction and forced convection heat transfer in ducts of arbitrary geometry. International Journal of Heat and Mass Transfer, 18(7-8):849-862.

[34]Shah, R.K., London, A.L., 1978. Laminar Flow Forced Convection in Ducts. Academic Press, New York.

[35]Shen, X.R., Zhang, M.K., Ma, J.F., Zhang, B.Z., 2008. Flow and heat transfer of oldroyd-B fluids in a rotating curved pipe. Journal of Hydrodynamics Series B, 20(1):39-46.

[36]White, F.M., 1991. Viscous Fluid Flow (2nd Edition). McGraw-Hill, New York.

[37]Zhang, H.Y., Ebadian, M.A., 1991. An analytical/numerical solution of convective heat transfer in the thermal entrance region of irregular ducts. International Communications in Heat and Mass Transfer, 18(2):273-291.

[38]Zhang, L.Z., Chen, Z.Y., 2011. Convective heat transfer in cross-corrugated triangular ducts under uniform heat flux boundary conditions. International Journal of Heat and Mass Transfer, 54(1-3):597-605.

[39]Zhang, M.K., Shen, X.R., Ma, J.F., Zhang, B.Z., 2007. Flow of oldroyd-B fluid in rotating curved square ducts. Journal of Hydrodynamics Series B, 19(1):36-41.

Open peer comments: Debate/Discuss/Question/Opinion

<1>

Please provide your name, email address and a comment





Journal of Zhejiang University-SCIENCE, 38 Zheda Road, Hangzhou 310027, China
Tel: +86-571-87952783; E-mail: cjzhang@zju.edu.cn
Copyright © 2000 - 2024 Journal of Zhejiang University-SCIENCE