Influences of electrical conductivity of the cylindrical walls on heat transfer enhancement of nanofluid swirling flow

Q3 Engineering
F. Madani, B. Mahfoud, Hibet Errahmane Mahfoud
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引用次数: 0

Abstract

The swirling nanofluid flow driven by a revolving bottom disk of a cylindrical container under magnetic field effect and temperature gradient is examined in this study. The effects of the electrical conductivity of cylindrical walls’ on heat transfer enhancement are quantitatively investigated. The finite volume approach is used to solve the governing equations under the appropriate assumptions. This study considers four cases of combined electric conducting and insulating walls. The solid nanoparticle (copper) with volume fraction (ϕ = 0.1) is added to water. Calculations were done for fixed Reynolds number (Re=1000), Richardson number (0≤Ri ≤2), and various Hartmann numbers. The mean Nusselt number decreased as the Richardson number increased owing to stratification layers. These latter restrict heat exchanges between the cylinder’s hot and cold zones. The results show that within a particular range of Hartmann numbers, the Nusselt number increases, especially when the revolving lid is electrically conducting. The best heat transfer occurs when all of the walls are electrically conductive, which results in a 100% improvement at low Richardson values. Finally, the electrical conductivity of the revolving lid was a key factor in enhancing heat transfer.
圆柱壁面电导率对纳米流体旋流强化传热的影响
本文研究了在磁场效应和温度梯度作用下圆柱形容器底盘驱动下纳米流体的旋转流动。定量研究了圆柱壁面电导率对强化传热的影响。在适当的假设条件下,采用有限体积法求解控制方程。本研究考虑了四种导电和绝缘结合墙的情况。将体积分数为(φ = 0.1)的固体纳米颗粒(铜)加入水中。对固定雷诺数(Re=1000)、理查德森数(0≤Ri≤2)和各种Hartmann数进行了计算。平均努塞尔数随着理查德森数的增加而减小,这是由于分层的缘故。后者限制了钢瓶冷热区之间的热交换。结果表明,在一定的哈特曼数范围内,努塞尔数增加,特别是当旋转盖是导电的时候。最好的传热发生在所有的墙壁都是导电的时候,这导致在低理查德森值下100%的改善。最后,旋转盖的导电性是提高传热的关键因素。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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