Numerical Simulation of Two Phase Turbulent Flow of Nanofluids in Confined Slot Impinging Jet

被引:0
作者
Babak Yousefi-Lafouraki
Abas Ramiar
Ali Akbar Ranjbar
机构
[1] Babol Noshirvani University of Technology,Faculty of Mechanical Engineering
来源
Flow, Turbulence and Combustion | 2016年 / 97卷
关键词
Vortex strcture; Jet- impingement surface distance ratio (; /; ); Stagnation point; Mixture model; Obstacle angle;
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学科分类号
摘要
In this article, a numerical investigation is performed on flow and heat transfer of confined impinging slot jet, with a mixture of water and Al2O3 nanoparticles as the working fluid. Two-dimensional turbulent flow is considered and a constant temperature is applied on the impingement surface. The k − ω turbulence model is used for the turbulence computations. Two-phase mixture model is implemented to study such a flow field. The governing equations are solved using the finite volume method. In order to consider the effect of obstacle angle on temperature fields in the channel, the numerical simulations were performed for different obstacle angles of 0° − 60°. Also different geometrical parameters, volume fractions and Reynolds numbers have been considered to study the behavior of the system in terms of stagnation point, average and local Nusselt number and stream function contours. The results showed that the intensity and size of the vortex structures depend on jet- impingement surface distance ratio (H/W) and volume fraction. The maximum Nusselt number occurs at the stagnation point with the highest values at about H/W = 1. Increasing obstacle angle, from 15° to 60°, enhances the heat transfer rate. It was also revealed that the minimum value of average Nusselt number occurs in higher H/W ratios with decreasing the channel length.
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页码:571 / 589
页数:18
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共 112 条
[1]  
Masuda H(1993)Alteration of thermal conductivity and viscosity of liquid by dispersing ultra-fine particles (Dispersion of γ-Al2O3, SiO2, and TiO2Ultra-fine particles Netsu Bussei (in Japanese) 4 227-233
[2]  
Ebata A(2014)High efficiency nanofluid cooling system for wind turbines Therm. Sci. 18 543-54
[3]  
Teramae K(2012)Experimental investigation of turbulent flow and convective heat transfer characteristics of alumina water nanofluids in fully developed flow regime Int. Commu Heat. Mass Transf. 39 1272-1278
[4]  
Hishinuma N(2011)Results of experimental investigations on the heat conductivity of nanofluids based on diathermic oil for high temperature applications Appl. Energy 97 828-833
[5]  
De Risi A(2013)A new solution for reduced sedimentation flat panel solar thermal collector using nanofluids Appl. Energy 111 80-93
[6]  
Milanese M(2013)Thermal conductivity of nanofluids containing high aspect ratio fillers Int. J. Heat. Mass. Transf 64 108-114
[7]  
Colangelo G(2015)Review of heat transfer in nanofluids: conductive, convective and radiative experimental results Renew. Sust. Energ. Rev. 43 1182-1198
[8]  
Laforgia D(1966)Effect of nozzle geomtery on local convective heat transfer to a confined air impinging jet Exp. Therm. Fluid Sci. 13 71-80
[9]  
Heyhat MM(2004)The effects of nozzle diameter on impinging jet heat transfer and fluid flow J. Heat Transf. 126 554-557
[10]  
Kowsary F(2002)A numerical study of the unsteady flow and heat transfer in a transitional confined slot jet impinging on an isothermal surface Int. J. Heat Mass Transf. 45 1237-1248