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NUMERICAL STUDY OF NATURAL TURBULENT CONVECTION OF NANOFLUIDS IN A TALL CAVITY HEATED FROM BELOW

机译:下方加热的空腔中纳米流体自然湍流对流的数值研究

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In the present paper a numerical study of natural turbulent convection in a tall cavity filled with nanofluids. The cavity has a heat source embedded on its bottom wall, while the left, right, and top walls of the cavity are maintained at a relatively low temperature. The working fluid is a water based nanofluid having three nano particle types: aluminum, Cu, and CuO. The influence of pertinent parameters such as Rayleigh number, the type of nanofluid, and solid volume fraction of nanoparticles on the cooling performance is studied. Steady forms of 2-D Reynolds-averaged-Navier-Stokes equations and conservation equations of mass and energy, coupled with the Boussinesq approximation, are solved by the control volume based discretisation method employing the SIMPLE algorithm for pressure velocity coupling. Turbulence is modeled using the standard k-s model. The Rayleigh number is varied from 2.4910(09) to 2.4910(11). The volume fractions of nano particles were varied in the interval 0 <= phi <= 6%. Stream lines, isotherms, velocity profiles, and temperature profiles are presented for various combinations of Rayleigh number, the type of nanofluid, and solid volume fraction of nanoparticles. The results are reported in the form of average Nusselt number on the heated wall. It is shown that for all values of Rayleigh number, the average heat transfer rate from the heat source increases almost linearly, and monotonically as the solid volume fraction increases. Finally, the average heat transfer rate takes on values that decrease according to the ordering Cu, CuO, and Al2O3.
机译:在本文中,对一个充满纳米流体的高腔中自然湍流对流的数值研究。空腔在其底壁上嵌入了一个热源,而空腔的左,右和顶壁则保持在较低的温度下。工作流体是具有三种纳米颗粒类型的水基纳米流体:铝,Cu和CuO。研究了诸如瑞利数,纳米流体的类型和纳米颗粒的固体体积分数等相关参数对冷却性能的影响。通过采用基于SIMPLE算法进行压力速度耦合的基于控制体积的离散化方法,可以求解二维的雷诺平均Navier-Stokes方程和质量与能量守恒方程的稳态形式,以及Boussinesq逼近。湍流使用标准k-s模型建模。瑞利数从2.4910(09)到2.4910(11)。纳米颗粒的体积分数在0 <= phi <= 6%的区间内变化。给出了瑞利数,纳米流体的类型和纳米颗粒的固体体积分数的各种组合的流线,等温线,速度曲线和温度曲线。结果以加热壁上的平均努塞尔数表示。结果表明,对于瑞利数的所有值,来自热源的平均传热率几乎呈线性增加,并且随着固体体积分数的增加而单调增加。最终,平均传热率呈现出根据Cu,CuO和Al2O3的顺序降低的值。

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