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Enhancement Of Natural Convection Heat Transfer Within Closed Enclosure Using Parallel Fins

Authors: Gdhaidh, Farouq A.S.; Hussain, Khalid; Qi, Hong Sheng;

Enhancement Of Natural Convection Heat Transfer Within Closed Enclosure Using Parallel Fins

Abstract

{"references": ["Peterson, G. P., and Ortega, A., \"Thermal control of electronic\nequipment and devices,\" In Advances in Heat Transfer, (Edited by\nHartnett, J. P., and Irvine, T. F.), 20, 1990, pp. 181-314.", "Ramaswamy, C., Joshi, Y., Nakayama, W., and Johnson, W., \"Highspeed\nvisualization of boiling from an enhanced structure,\" Int. J. Heat\nand Mass Transfer, 45, 2002, pp. 4761- 4771.", "Ridouane, E. H., Campo, A., and Chang, J. Y., 2005 \"Natural\nconvection patterns in right-angled triangular cavities with heated\nvertical sides and cooled hypotenuses,\" J. Heat Transfer, 127, 2005, pp.\n1181\u20131186.", "Incropera, F. P., \"Convection heat transfer in electronic equipment\ncooling,\" ASME J. Heat Transfer, 110, 1988, 1097\u20131111.", "Bar-Cohen, A., \"Thermal management of electronic components with\ndielectric liquids, Proceedings of the ASME/JSME Thermal\nEngineering Joint Conference,\" (Edited by J. R. Lloyd and Y.\nKurosaki), 2, pp. xvxxxix (1991).", "Heindel, T. J., Incropera, F. P., and Ramadhyani, S., \"Conjugate natural\nconvection from an array of discrete heat sources: part 2 -- a numerical\nparametric study,\" Int. J. Heat and Fluid Flow, 16, 1995, pp. 511- 518.", "Hasnaoui, M., Bilgen, E., and Vasseur, P., \"Natural convection heat\ntransfer in rectangular cavities heated from below,\" J. Thermophysical\nHeat Transfer, 6, 1992, pp. 255-264.", "Valencia, A., and Frederick, R., \"Heat Transfer in square cavities with\npartially active vertical walls,\" Int. J. Heat and Mass Transfer, 32,\n1989, pp. 1567-1574.", "Selamet, E., Arpaci, V. S., and Borgnakke, C., \"Simulation of laminar\nbuoyancy driven flows in an enclosure,\" Numerical Heat Transfer, 22,\n1992, pp. 401-420.\n[10] Incropera, F.P., \"Liquid Cooling of Electronic Devices by Single-Phase\nConvection,\" John Wiley, New York, 1999.\n[11] Hung, Y. H., and Lu, C. T., \"Optimum-spacing design of vertical PCB\narrays in natural convection.In Transport Phenomena in Thermal\nControl,\" (Edited by G.-J. Hwang), pp. 151-161. Hemisphere, New\nYork (1989).\n[12] Elenbaas, W., \" Heat dissipation of parallel plates by free convection,\"\nPhysica, 9, 1942, pp. 1-28.\n[13] Bar-Cohen, A., \"Fin thickness for an optimized natural convection\narray of rectangular fins,\" J. Heat Transfer, 101, 1979, pp. 564-566.\n[14] Bar-Cohen, A., and Jelinek, M., \"Optimization of longitudinal finned\narrays--London's 25 KW power-tube revisited. In Compact Heat\nExchangers,\" (Edited by R. K. Shah, A. D. Kraus and D. Metzger), pp.\n105-120.Hemisphere, New York (1990).\n[15] Heindel, T. J., Incropera, F. P., and Ramadhyani, S., \"Enhancement of\nnatural convection heat transfer from an array of discrete heat sources,\"\nInt. J Heat and Mass Transfer, 39, 1996, pp. 479- 490.\n[16] Gdhaidh, F. A., Hussain, K., and Qi, H. S., \"Numerical Investigation of\nConjugate Natural Convection Heat Transfer from Discrete Heat\nSources in Rectangular Enclosure,\" WCE 2014, 2-4 July, 2014,\nLondon, U.K., Vol II, pp. 1304- 1309.\n[17] Gdhaidh, F. A., Hussain, K., and Qi, H. S., \"Numerical Study of\nConjugate Natural Convection Heat Transfer Using One Phase Liquid\nCooling,\" Materials Science and Engineering, 65, 2014, 012012.\n[18] Miksa deSorgo, \"Thermal Interface Materials,\" Electronics Cooling\nMagazine September 1, 1996, No 3."]}

A numerical study of natural convection heat transfer in water filled cavity has been examined in 3-Dfor single phase liquid cooling system by using an array of parallel plate fins mounted to one wall of a cavity. The heat generated by a heat source represents a computer CPU with dimensions of 37.5∗37.5mm mounted on substrate. A cold plate is used as a heat sink installed on the opposite vertical end of the enclosure. The air flow inside the computer case is created by an exhaust fan. A turbulent air flow is assumed and k-ε model is applied. The fins are installed on the substrate to enhance the heat transfer. The applied power energy range used is between 15 - 40W. In order to determine the thermal behaviour of the cooling system, the effect of the heat input and the number of the parallel plate fins are investigated. The results illustrate that as the fin number increases the maximum heat source temperature decreases. However, when the fin number increases to critical value the temperature start to increase due to the fins are too closely spaced and that cause the obstruction of water flow. The introduction of parallel plate fins reduces the maximum heat source temperature by 10% compared to the case without fins. The cooling system maintains the maximum chip temperature at 64.68°C when the heat input was at 40W that is much lower than the recommended computer chips limit temperature of no more than 85°C and hence the performance of the CPU is enhanced.

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United Kingdom
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Keywords

natural convection, 600, Chips limit temperature, parallel plate, single phase liquid., 620, closed enclosure, Parallel plate, Natural convection, Heat transfer, Closed enclosure, Single phase liquid

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This indicator reflects the "current" impact/attention (the "hype") of an article in the research community at large, based on the underlying citation network.
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