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首页> 外文期刊>Journal of thermal analysis and calorimetry >Mixed convection in a trapezoidal enclosure filled with two layers of nanofluid and porous media with a rotating circular cylinder and a sinusoidal bottom wall
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Mixed convection in a trapezoidal enclosure filled with two layers of nanofluid and porous media with a rotating circular cylinder and a sinusoidal bottom wall

机译:在梯形外壳中的混合对流填充有两层纳米流体和多孔介质,具有旋转圆筒和正弦底壁

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The laminar two-dimensional mixed convection in a trapezoidal enclosure with a rotating inner circular cylinder and a sinusoidal bottom wall is studied numerically. The fluid inside the enclosure is a CuO-water nanofluid layer in the top space of it, while the bottom space includes a CuO-water nanofluid saturated with a porous medium. Both the right and left sidewalls are assumed adiabatic, while the bottom and the top walls of the enclosure are maintained, respectively, at the hot and cold temperatures. The dimensionless governing equations are expressed for velocity and temperature formulation and modeled by using COMSOL code based on the Galerkin finite element method. Parametric studies on the effects of various significant parameters such as Rayleigh number, Darcy number, the inner cylinder radius, the porous layer thickness, the angular rotational velocity, the solid volume fraction and the number of undulations on the flow and thermal fields together with the heat transfer rate have been performed. The highest value of the stream function for (Ra = 10(3)and Ra = 10(5)) is seen at (R = 0.2 andS = 0.2). The same thing is observed, when the bottom wall is considered wavy. For (Ra = 10(3)andN = 0) and (0.5 <= S <= 0.8), it can be seen that as the inner cylinder radius increases from (R = 0.1) to (R = 0.3), the stream function values increase continuously. It is found that the average Nusselt number increases as the Rayleigh and Darcy numbers, the solid volume fraction, inner cylinder radius and the angular rotational velocity of the cylinder increase, while it decreases as the porous layer thickness and the number of undulations increase. Comparisons with previously published numerical works are performed, and good agreements between the results are observed.
机译:在数值上研究了具有旋转内圆柱和正弦底壁的梯形外壳中的层状二维混合对流。外壳内的流体是其中的Cuo水纳米流体层,在其上的顶部空间,底部空间包括用多孔介质饱和的Cuo水纳米流体。右侧和左侧壁都被认为是绝热的,而外壳的底部和顶壁分别在热和冷温度下保持。无量的控制方程被表达用于速度和温度配方,并通过基于Galerkin有限元方法使用COMSOL码建模。参数研究瑞利数,达西数,内筒半径,多孔层厚度,角度旋转速度,固体体积分数和流量和热场上的起伏数量的影响已经进行了传热速率。 (Ra = 10(3)和Ra = 10(5))的流函数的最高值(r = 0.2 ands = 0.2)。观察到同样的事情,当底壁被认为是波浪时。 for(Ra = 10(3)andn = 0)和(0.5 <= s <= 0.8),可以看出,随着内筒半径从(r = 0.1)增加到(r = 0.3),流函数值连续增加。结果发现,作为瑞利和达西数,固体体积分数,内筒半径和气缸的角度旋转速度增加,随着多孔层的厚度和波动的数量增加,平均水孔数量增加。进行了与先前发表的数值作品的比较,并且观察结果之间的良好协议。

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