Author:
El‐Shaarawi Maged A.I.,Mokheimer Esmail M.A.,Jamal Ahmad
Abstract
PurposeTo explore the effect of the annulus geometrical parameters on the induced flow rate and the heat transfer under the conjugate (combined conduction and free convection) thermal boundary conditions with one cylinder heated isothermally while the other cylinder is kept at the inlet fluid temperature.Design/methodology/approachA finite‐difference algorithm has been developed to solve the bipolar boundary‐layer equations for the conjugate laminar free convection heat transfer in vertical eccentric annuli.FindingsNumerical results are presented for a fluid of Prandtl number, Pr=0.7 in eccentric annuli. The geometry parameters of NR2 and E (the fluid‐annulus radius ratio and the eccentricity, respectively) have considerable effects on the results.Practical implicationsApplications of the obtained results can be of value in the heat‐exchanger industry, in cooling of underground electric cables, and in cooling small vertical electric motors and generators.Originality/valueThe paper presents results that are not available in the literature for the problem of conjugate laminar free convection in open‐ended vertical eccentric annular channels. Geometry effects having been investigated by considering fluid annuli having radii ratios NR2=0.1 and 0.3, 0.5 and 0.7 and four values of the eccentricity E=0.1, 0.3, 0.5 and 0.7. Moreover, practical ranges of the solid‐fluid conductivity ratio (KR) and the wall thicknesses that are commonly available in pipe standards have been investigated. Such results are very much needed for design purposes of heat transfer equipment.
Subject
Applied Mathematics,Computer Science Applications,Mechanical Engineering,Mechanics of Materials
Reference23 articles.
1. Anand, N.K. and Tree, D.R. (1987), “Some studies of the effects of axial conduction in a tube wall on the steady‐state laminar convective heat transfer”, Journal of Heat Transfer, Vol. 109, pp. 1025‐8.
2. Cheng, K.C. and Hwang, G.J. (1968), “Laminar forced convection in eccentric annuli”, A.I. Ch. E. Journal, Vol. 14 No. 3, pp. 510‐2.
3. Dyler, J.R. and Fowler, J.H. (1966), “The development of natural convection in a partially‐heated vertical channel formed by two parallel surfaces”, Mechanical and Chemical Engineering Trans., The Institution of Engineers Australia, MC2, Perth, pp. 12‐16.
4. El‐Shaarawi, M.A.I. and Haider, S.A. (2001), “Critical conductivity ratio for conjugate heat transfer in eccentric annuli”, International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 11 No. 2, pp. 255‐77.
5. El‐Shaarawi, M.A.I. and Mokheimer, E.M.A. (1998), “Free convection in vertical eccentric annuli with a uniformly heated boundary”, International Journal of Numerical Methods for Heat & Fluid Flow, Vol. 8 No. 5, pp. 488‐503.
Cited by
10 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献