Convective heat transfer for a gaseous slip flow in micropipe and parallel-plate microchannel with uniform wall heat flux: effect of axial heat conduction

被引:5
|
作者
Haddout, Y. [1 ]
Essaghir, E. [1 ]
Oubarra, A. [1 ]
Lahjomri, J. [1 ]
机构
[1] Univ Hassan 2, Fac Sci Ain Chock, Lab Mech, BP 5366, Casablanca 20100, Morocco
关键词
Heat transfer; Forced convection; Slip flow; Axial heat conduction; Self-adjoint formalism; EXTENDED GRAETZ PROBLEM; VISCOUS DISSIPATION; MICROTUBES; RAREFACTION; LAMINAR; REGION; NUMBER; PIPE;
D O I
10.1007/s12648-017-1154-4
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Thermally developing laminar slip flow through a micropipe and a parallel plate microchannel, with axial heat conduction and uniform wall heat flux, is studied analytically by using a powerful method of self-adjoint formalism. This method results from a decomposition of the elliptic energy equation into a system of two first-order partial differential equations. The advantage of this method over other methods, resides in the fact that the decomposition procedure leads to a selfadjoint problem although the initial problem is apparently not a self-adjoint one. The solution is an extension of prior studies and considers a first order slip model boundary conditions at the fluid-wall interface. The analytical expressions for the developing temperature and local Nusselt number in the thermal entrance region are obtained in the general case. Therefore, the solution obtained could be extended easily to any hydrodynamically developed flow and arbitrary heat flux distribution. The analytical results obtained are compared for select simplified cases with available numerical calculations and they both agree. The results show that the heat transfer characteristics of flow in the thermal entrance region are strongly influenced by the axial heat conduction and rarefaction effects which are respectively characterized by Peclet and Knudsen numbers.
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页码:741 / 755
页数:15
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