首页> 美国卫生研究院文献>Nanomaterials >Effects of a Rotating Cone on the Mixed Convection in a Double Lid-Driven 3D Porous Trapezoidal Nanofluid Filled Cavity under the Impact of Magnetic Field
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Effects of a Rotating Cone on the Mixed Convection in a Double Lid-Driven 3D Porous Trapezoidal Nanofluid Filled Cavity under the Impact of Magnetic Field

机译:旋转锥对磁场作用下双盖驱动3D多孔梯形纳米流体填充腔内混合对流的影响

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摘要

Effects of a rotating cone in 3D mixed convection of CNT-water nanofluid in a double lid-driven porous trapezoidal cavity is numerically studied considering magnetic field effects. The numerical simulations are performed by using the finite element method. Impacts of Richardson number (between 0.05 and 50), angular rotational velocity of the cone (between −300 and 300), Hartmann number (between 0 and 50), Darcy number (between 10 and ), aspect ratio of the cone (between 0.25 and 2.5), horizontal location of the cone (between 0.35 H and 0.65 H) and solid particle volume fraction (between 0 and 0.004) on the convective heat transfer performance was studied. It was observed that the average Nusselt number rises with higher Richardson numbers for stationary cone while the effect is reverse for when the cone is rotating in clockwise direction at the highest supped. Higher discrepancies between the average Nusselt number is obtained for 2D cylinder and 3D cylinder configuration which is 28.5% at the highest rotational speed. Even though there are very slight variations between the average Nu values for 3D cylinder and 3D cone case, there are significant variations in the local variation of the average Nusselt number. Higher enhancements in the average Nusselt number are achieved with CNT particles even though the magnetic field reduced the convection and the value is 84.3% at the highest strength of magnetic field. Increasing the permeability resulted in higher local and average heat transfer rates for the 3D porous cavity. In this study, the aspect ratio of the cone was found to be an excellent tool for heat transfer enhancement while 95% enhancements in the average Nusselt number were obtained. The horizontal location of the cone was found to have slight effects on the Nusselt number variations.
机译:考虑磁场效应,数值研究了旋转锥在双盖驱动的多孔梯形腔体中CNT-水纳米流体3D混合对流中的影响。通过使用有限元方法进行数值模拟。理查森数(介于0.05和50之间),圆锥体的角旋转速度(介于-300和300之间),哈特曼数(介于0和50之间),达西数(介于10和之间),圆锥体的纵横比(介于0.25之间)的影响和2.5),研究了锥体的水平位置(在0.35 H和0.65 H之间)和固体颗粒体积分数(在0和0.004之间)对流换热性能。观察到,固定锥的平均Nusselt数随着较高的Richardson数而增加,而当锥以最高顺时针方向旋转时,效果相反。对于2D圆柱体和3D圆柱体配置,平均Nusselt数之间的差异更高,在最高转速下为28.5%。即使3D圆柱体和3D圆锥体的平均Nu值之间有很小的变化,平均Nusselt数的局部变化也有很大的变化。即使磁场降低了对流,CNT颗粒也可以使平均Nusselt数更高,在磁场强度最高的情况下,数值为84.3%。渗透性的增加导致3D多孔腔的局部和平均传热速率更高。在这项研究中,发现锥的长宽比是增强传热的极佳工具,而平均努塞尔数则提高了95%。发现锥体的水平位置对Nusselt数变化影响很小。

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