Thermophoresis and Brownian motion effects on boundary layer flow of nanofluid in presence of thermal stratification due to solar energy

被引:0
作者
N. Anbuchezhian
K. Srinivasan
K. Chandrasekaran
R. Kandasamy
机构
[1] Sri Guru Institute of Technology,Department of Mechanical Engineering
[2] Anna University,Department of Mechanical Engineering
[3] R. M. K. Engineering College,Department of Mechanical Engineering
[4] Universiti Tun Hussein Onn Malaysia,Research Centre for Computational Mathematics, Faculty of Science, Technology and Human Development
来源
Applied Mathematics and Mechanics | 2012年 / 33卷
关键词
solar radiation; Brownian motion; nanofluid; thermophoresis; thermal stratification; O357.1; 75F15; 73D50;
D O I
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学科分类号
摘要
The problem of laminar fluid flow, which results from the stretching of a vertical surface with variable stream conditions in a nanofluid due to solar energy, is investigated numerically. The model used for the nanofluid incorporates the effects of the Brownian motion and thermophoresis in the presence of thermal stratification. The symmetry groups admitted by the corresponding boundary value problem are obtained by using a special form of Lie group transformations, namely, the scaling group of transformations. An exact solution is obtained for the translation symmetrys, and the numerical solutions are obtained for the scaling symmetry. This solution depends on the Lewis number, the Brownian motion parameter, the thermal stratification parameter, and the thermophoretic parameter. The conclusion is drawn that the flow field, the temperature, and the nanoparticle volume fraction profiles are significantly influenced by these parameters. Nanofluids have been shown to increase the thermal conductivity and convective heat transfer performance of base liquids. Nanoparticles in the base fluids also offer the potential in improving the radiative properties of the liquids, leading to an increase in the efficiency of direct absorption solar collectors.
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页码:765 / 780
页数:15
相关论文
共 42 条
[1]  
Todd P.(2009)Optical properties of liquids for direct absorption solar thermal energy systems Solar Energy 83 969-977
[2]  
Otanicar P. P. E.(2003)Performance evaluation of solar thermal electric generation systems Energy Conversion and Management 44 2425-2443
[3]  
Jay Golden S.(1981)Analysis of convective losses from cavity solar central receivers Solar Energy 27 295-300
[4]  
Odeh S. D.(1996)Combined natural convection conduction and radiation heat transfer in a discretely heated open cavity Journal of Heat Transfer 118 56-65
[5]  
Behnia M.(2008)Heat transfer in inclined rectangular receivers for concentrated solar radiation International Communications in Heat and Mass Transfer 35 551-556
[6]  
Morrison G. L.(1998)Recommendations for the market introduction of solar thermal power stations Renewable Energy 14 17-22
[7]  
Clausing A.(2009)Prediction of nanoparticle transport and deposition in bends Applied Mathematics and Mechanics (English Edition) 30 957-968
[8]  
Dehghan A. A.(2009)Research on the transport and deposition of nanoparticles in a rotating curved pipe Physics of Fluids 21 122001-233
[9]  
Behnia M.(1993)Alteration of thermal conductivity and viscosity of liquid by dispersing ultra-fine particles Netsu Bussei 7 227-250
[10]  
Muftuoglu A.(2006)Convective transport in nanofluids ASME Journal of Heat Transfer 128 240-247