首页> 外文会议>Micro/Nanoscale Heat Transfer International Conference 2008 >DEVELOPING FLOW WITH COMBINED FORCED AND FREE CONVECTION OF NANOFLUIDS FOR HORIZONTAL SEMICIRCULAR DUCTS WITH THE FLAT WALLAT THE VERTICAL POSITION
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DEVELOPING FLOW WITH COMBINED FORCED AND FREE CONVECTION OF NANOFLUIDS FOR HORIZONTAL SEMICIRCULAR DUCTS WITH THE FLAT WALLAT THE VERTICAL POSITION

机译:垂直位置带有扁平壁的水平半圆形导管的纳米流体联合强迫和自由对流的发展流

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This study is concerned with the numerical investigation of the developing laminar mixed convection of a nanofluid which consists of water- γAl_2O_3 in a horizontal semicircular duct with the flat wall at a vertical position. The governing momentum and energy equations are solved numerically using a marching technique with the finite control volume approach following the SIMPLER algorithm. The properties of the nanofluid have been simulated by using a well known models and correlations from the literature. Results are obtained for the thermal boundary condition of uniform heat input axially with uniform wall temperature circumferentially, at any cross section (Hl boundary condition), different values of particles volume concentration and for two values of Grashof number 10~4 and 106. These results include the velocity and temperature distributions at different axial locations, axial distributions of local Nusselt number, and local average wall friction factor. It was observed that increasing the nanoparticles concentrations at low Gr, has a negligible effect on the developing of Nusselt number and friction factor. However, at high Gr it was found that increasing the particle volume concentration increases the Nusselt number in the developing and fully developed regions and reduces the friction factor at the developing and fully developed regions, if it is compared to the results obtained from the results obtained from the pure water at the same flow conditions. As an example for the case of Grashof number equals to 10~6 and particles volume concentration equals to 0.1, the enhancement of the Nusselt number and the reduction of wall friction factor at the fully developed region, are 17.5% and 6.4% respectively, if it is compared to that of the base fluid(water), at the same flow conditions.
机译:这项研究涉及的是由水平半圆管中的水γAl_2O_3组成的纳米流体的发展层流混合对流的数值研究,水平壁在垂直位置。遵循SIMPLER算法,使用有限控制体积法的行进技术以数值方式求解了动量和能量的控制方程。纳米流体的特性已经通过使用众所周知的模型和文献中的相关性进行了模拟。对于在任意横截面(Hl边界条件)下轴向均匀输入的热量和周向壁温均匀的热边界条件,获得了不同的颗粒体积浓度值以及两个Grashof数10〜4和106的结果。包括不同轴向位置的速度和温度分布,局部Nusselt数的轴向分布以及局部平均壁摩擦系数。观察到,在低Gr下增加纳米颗粒的浓度对Nusselt数和摩擦系数的发展影响可忽略不计。但是,如果将其与从所得结果中获得的结果进行比较,则发现在高Gr时,增加颗粒体积浓度会增加发育中和充分发育区域的Nusselt数,并降低了发育中和充分发育区域的摩擦系数。在相同的流量条件下从纯净水中提取。例如,如果Grashof数等于10〜6,且颗粒体积浓度等于0.1,则在充分发达的区域,Nusselt数的增加和壁摩擦系数的减少分别为17.5%和6.4%,如果在相同的流量条件下,将其与基础流体(水)进行比较。

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