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首页> 外文期刊>International communications in heat and mass transfer >Mixed convection due to rotating cylinder in an internally heated and flexible walled cavity filled with SiO_2-water nanofluids: Effect of nanoparticle shape
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Mixed convection due to rotating cylinder in an internally heated and flexible walled cavity filled with SiO_2-water nanofluids: Effect of nanoparticle shape

机译:旋转的圆柱体在内部加热并填充有SiO_2-水纳米流体的柔性壁腔中产生的混合对流:纳米颗粒形状的影响

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In this study, numerical investigation of mixed convection in a square cavity filled with SiO_2 nanofluid and volumetric heat generation is performed under the effect of an inner rotating cylinder and a flexible side wall. The top wall of the cavity is kept at constant cold temperature while the bottom wall is at hot temperature and the other walls of the cavity and the cylinder surface are assumed to be adiabatic. The finite element method is utilized to solve the governing equations. The Arbitrary Lagrangian-Eulerian method is used to describe the fluid motion with the flexible wall of the cavity in the fluid-structure interaction model. The effects of external Rayleigh number (between 10~3 and 5 × 10~5), internal Rayleigh number (between 10~4 and 10~6), Young's modulus of the flexible wall (between 5 × 10~2 and 10~6), angular rotational speed of the cylinder (between - 2000 and 2000) and nanoparticle volume fraction (between 0 and 0.03) on the fluid flow and heat transfer are numerically studied for different solid nanoparticle shapes (spherical, cylindrical, brick and blade). It is observed that as the value of external Rayleigh number increases, internal Rayleigh number and elastic modulus of the flexible wall decrease, the local and averaged heat transfer enhances. The averaged heat transfer enhances with cylinder rotation in both directions for all nanoparticle types. Among all nanoparticle shapes, cylindrical ones show the best performance and spherical ones show the worst performance for heat transfer enhancement.
机译:在这项研究中,在内部旋转圆柱体和柔性侧壁的作用下,对填充有SiO_2纳米流体的方腔内混合对流和体积生热的数值研究进行了数值研究。空腔的顶壁保持恒定的低温,而底壁保持在高温,并且空腔的其他壁和圆柱体表面被认为是绝热的。利用有限元法求解控制方程。在流固耦合模型中,采用任意拉格朗日-欧拉方法描述了腔体柔性壁的流体运动。外部瑞利数(介于10〜3和5×10〜5之间),内部瑞利数(介于10〜4和10〜6之间),柔性壁的杨氏模量(介于5×10〜2和10〜6之间)的影响),对于不同的固体纳米颗粒形状(球形,圆柱形,砖形和叶片形),数值研究了圆柱体的角旋转速度(在-2000和2000之间)以及纳米颗粒体积分数(在0和0.03之间)对流体流动和传热的影响。观察到,随着外部瑞利数的增加,内部瑞利数和柔性壁的弹性模量降低,局部和平均传热增强。对于所有纳米颗粒类型,平均传热随着圆柱体在两个方向上的旋转而增强。在所有纳米颗粒形状中,圆柱形状表现出最好的性能,球形形状表现出最差的传热性能。

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