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Numerical study of natural convection heat transfer of Al2 O3/Water nanofluid in a Γ-shaped microchannel

机译:Γ形微通道中Al2 O3 /水纳米流体自然对流换热的数值研究

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Finite-volume procedure is presented for solving the natural convection of the laminar nanofluid flow in a Γ shaped microchannel in this article. Modified Navier-Stokes equations for nanofluids are the basic equations for this problem. Slip flow region, including the effects of velocity slip and temperature jump at the wall, are the main characteristics of flow in the slip flow region. Steady state equations were solved by using time marching method. In provided FORTRAN code, the finite volume method and an explicit fourth-order Runge–Kutta integration algorithm were applied to find the steady state solutions. Also an artificial compressibility technique was used to couple the continuity to the momentum equations as it is simpler and converges faster. The Grashof numbers from to were considered. The results showed that Nusselt number increases with the Grashof number and the parameter R (the ratio of minimum diameter of nanoparticles and maximum one).. As the parameter R increases, the distortion of the isotherm lines increases to some extent.
机译:本文提出了有限体积的程序来解决层状纳米流体在Γ型微通道中的自然对流问题。用于纳米流体的改进的Navier-Stokes方程是解决此问题的基本方程。滑流区域,包括壁面速度滑移和温度跃变的影响,是滑流区域中流动的主要特征。采用时间步长法求解稳态方程。在提供的FORTRAN代码中,应用了有限体积方法和显式的四阶Runge-Kutta积分算法来找到稳态解。还使用了人工压缩技术,将连续性与动量方程式耦合起来,因为它更简单且收敛速度更快。考虑到的Grashof编号。结果表明,Nusselt数随Grashof数和参数R(纳米颗粒的最小直径与最大直径之比)的增加而增加。随着参数R的增加,等温线的变形有所增加。

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