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Optimal selection of annulus radius ratio to enhance heat transfer with minimum entropy generation in developing laminar forced convection of water-Al2O3 nanofluid flow 被引量:23

Optimal selection of annulus radius ratio to enhance heat transfer with minimum entropy generation in developing laminar forced convection of water-Al_2O_3 nanofluid flow
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摘要 Heat transfer and entropy generation of developing laminar forced convection flow of water-Al_2O_3 nanofluid in a concentric annulus with constant heat flux on the walls is investigated numerically. In order to determine entropy generation of fully developed flow, two approaches are employed and it is shown that only one of these methods can provide appropriate results for flow inside annuli. The effects of concentration of nanoparticles, Reynolds number and thermal boundaries on heat transfer enhancement and entropy generation of developing laminar flow inside annuli with different radius ratios and same cross sectional areas are studied. The results show that radius ratio is a very important decision parameter of an annular heat exchanger such that in each Re, there is an optimum radius ratio to maximize Nu and minimize entropy generation. Moreover, the effect of nanoparticles concentration on heat transfer enhancement and minimizing entropy generation is stronger at higher Reynolds. Heat transfer and entropy generation of developing laminar forced convection flow of water-Al_2O_3 nanofluid in a concentric annulus with constant heat flux on the walls is investigated numerically. In order to determine entropy generation of fully developed flow, two approaches are employed and it is shown that only one of these methods can provide appropriate results for flow inside annuli. The effects of concentration of nanoparticles, Reynolds number and thermal boundaries on heat transfer enhancement and entropy generation of developing laminar flow inside annuli with different radius ratios and same cross sectional areas are studied. The results show that radius ratio is a very important decision parameter of an annular heat exchanger such that in each Re, there is an optimum radius ratio to maximize Nu and minimize entropy generation. Moreover, the effect of nanoparticles concentration on heat transfer enhancement and minimizing entropy generation is stronger at higher Reynolds.
出处 《Journal of Central South University》 SCIE EI CAS CSCD 2017年第8期1850-1865,共16页 中南大学学报(英文版)
关键词 nanofluid heat transfer enhancement forced convection entropy generation annulus radius ratio 强化传热 纳米流体 熵产生 半径比 最优选择 流体流动 雷诺兹数 颗粒浓度
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  • 1HUNGA Yi-hsuan, TENGA Tun-ping, TENGB Tun-chien, CHENA Jyun-hong. Assessment of heat dissipation performance for nanofluid [J]. Applied Thermal Engineering, 2012, 32: 132-140.
  • 2SELVAKUMAR P, SURESH S. Convective performance of CuO/water nanofluid in an electronic heat sink [J]. Experimental Thermal and Fluid Science, 2012, 40: 57-63.
  • 3LEE Seung-won, PARK Sung-dae, KANG Sarah, BANG In-cheol, KIM Ji-hyun. Investigation of viscosity and thermal conductivity of SiC nanofluids for heat transfer applications [J]. International Journal of Heat and Mass Transfer, 2011, 54(1/2/3): 433-438.
  • 4LIUA Min-sheng, LINB Mark Ching-Cheng, TSAIC C Y. WANG Chi-Chuan. Enhancement of thermal conductivity with Cu for nanofluids using chemical reduction method [J]. International Journal of Heat and Mass Transfer, 2006, 49(17/18): 3028-3033.
  • 5ZE1NALI HERIS S, NASR ESFAHANY M, ETEMAD S G. Experimental investigation of convective heat transfer of A12O3/water nanofluid in circular tube [J]. International Journal of Heat and Fluid Flow, 2007, 28 (2): 203-210.
  • 6ZEINALI HERIS S, NASR ESFAHANY M, ETEMAD S G. Investigation of CuO/water nanofluid laminar convective heat transfer through a circular tube [J]. Enhanced Heat Transfer, 2006, 13 (4): 279-289.
  • 7WEN D, DING Y. Experimental investigation into convective heat transfer of nanofluids at the entrance region under laminar flow conditions. [J]. International Journal of Heat and Mass Transfer,2004, 47(24): 5181-5188.
  • 8NGUYEN C T, ROY G, GAUTHIER C, GALANIS N. Heat transfer enhancement using Al2O3-water nanofluid for electronic liquid cooling system [J]. Applied Thermal Engineering, 2007, 28(8): 1501-1506.
  • 9PAK B C, CHO Y I. Hydrodynamic and heat transfer study of dispersed fluids with submicron metallic oxide particles [J]. Experimental Heat Transfer, 1998, 11(2): 151-170.
  • 10FOTUKIAN S M, NASR ESFAHANY M. Experimental study of turbulent convective heat transfer and pressure drop of dilute CuO/water nanofluid inside a circular tube [J]. International Communications in Heat and Mass Transfer, 2010, 37(2): 214-219.

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