Author:
Mokheimer Esmail M.A.,Sami S.,Yilbas B.S.
Abstract
PurposeThis paper's aim is to examine flow and heat transfer through vertical channels between parallel plates, which is of prime importance in the design of cooling systems for electronic equipment such as that of finned cold plates in general, plate‐and‐frame heat exchangers, etc.Design/methodology/approachNumerical and analytical solutions are presented to investigate the heat transfer enhancement and the pressure drop reduction due to buoyancy effects (for buoyancy‐aided flow) for the developing laminar mixed convection in vertical channel between parallel plates in the vicinity of the critical values of the buoyancy parameter (Gr/Re)crt that are obtained analytically. The numerical solutions are presented for a wide range of the buoyancy parameters Gr/Re that cover both of buoyancy‐opposed and buoyancy‐aided flow situations under each of the isothermal boundary conditions under investigation.FindingsBuoyancy parameters greater than the critical values result in building‐up the pressure downstream of the entrance such that the vertical channel might act as a thermal diffuser with possible incipient flow reversal. Locations at which the pressure gradient vanishes and the locations at which the pressure‐buildup starts have been numerically obtained and presented for all the investigated cases.Research limitations/implicationsThe study is limited to the laminar flow situation.Practical implicationsThe results clearly show that for buoyancy‐aided flow, the increase of the buoyancy parameter enhances the heat transfer and reduces the pressure drop across the vertical channel. These findings are very useful for cooling channel or chimney designs.Originality/valueThe study is original and presents new findings, since none of the previous studies reported the conditions for which pressure buildup might take place due to mixed convection in vertical channels between parallel plates.
Subject
Applied Mathematics,Computer Science Applications,Mechanical Engineering,Mechanics of Materials
Reference30 articles.
1. Aung, W. and Worku, G. (1986a), “Theory of fully developed combined convection including flow reversal”, Transactions of the ASME, Journal of Heat Transfer, Vol. 108, pp. 485‐8.
2. Aung, W. and Worku, G. (1986b), “Developing flow and flow reversal in a vertical channel with asymmetric wall temperatures”, Transactions of the ASME, Journal of Heat Transfer, Vol. 108, pp. 299‐307.
3. Aung, W. (1987), “Mixed convection in internal flow”, in Kakaç, S., Shah, R.K. and Aung, W. (Eds), Hand Book of Single‐Phase Convective Heat Transfer, Chapter 15, John Wiley & Sons, New York, NY.
4. Barletta, A. (2001), “Analysis of flow reversal for laminar mixed convection in a vertical rectangular duct with one or more isothermal walls”, International Journal of Heat and Mass Transfer, Vol. 44 No. 18, pp. 3481‐297.
5. Barletta, A. and Zanchini, E. (1999), “On the choice of reference temperature for fully developed mixed convection in a vertical channel”, International Journal of Heat and Mass Transfer, Vol. 42 No. 16, pp. 3169‐81.
Cited by
2 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