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首页> 外文期刊>International Journal of Heat and Mass Transfer >Effect of solid-to-fluid conductivity ratio on mixed convection and entropy generation of a nanofluid in a lid-driven enclosure with a thick wavy wall
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Effect of solid-to-fluid conductivity ratio on mixed convection and entropy generation of a nanofluid in a lid-driven enclosure with a thick wavy wall

机译:固液比对波浪形壁厚盖驱动箱体中纳米流体混合对流和熵产生的影响

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摘要

A numerical study on the conjugate heat transfer by mixed convection of a Cu-water nanofluid and conduction in a solid region is conducted in an enclosure with a thick wavy heated wall. The upper lid of the enclosure is made to slide horizontally at a constant speed, along with that the condition of heated outer boundary of the thick bottom wall leads to a mixed convection within the enclosure. The impact of the wavy fluid-solid interface, solid-to-fluid thermal conductivity ratio and nanoparticle volume fraction on the heat transfer characteristics is analyzed for different choice of the Richardson number. The computational domain is transformed into an orthogonal co-ordinate system. The transformed governing equations along with the specified boundary conditions are solved through a finite volume method for a wide range of Richardson number, nanoparticle volume fraction, wave amplitude, wave number and wall-to-fluid conductivity ratio for different Reynolds number. Results show that the heat transfer rate increases substantially due to the inclusion of nanoparticles. Heat transfer rate varies due to the variation of the solid-to-fluid conductivity ratio, amplitude and wave number of the wavy wall. The impact of the wavy surface is stronger when the solid conductivity is in the order of the conductivity of the fluid. The Bejan number and the entropy generation are determined to analyze the thermodynamic optimization of the conjugate mixed convection. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在具有厚波浪加热壁的封闭空间内,对铜-水纳米流体混合对流和固体区域内的传导进行共轭传热的数值研究。使外壳的上盖以恒定的速度水平滑动,同时厚底壁的加热外边界的状态导致外壳内的混合对流。对于理查森数的不同选择,分析了波浪状的流体-固体界面,固体与流体的导热系数以及纳米颗粒体积分数对传热特性的影响。计算域被转换为正交坐标系。通过有限体积方法,针对不同的雷诺数,针对大范围的Richardson数,纳米粒子体积分数,波幅,波数和壁-流体电导率,通过有限体积法求解了转换后的控制方程式以及指定的边界条件。结果表明,由于包含纳米颗粒,传热速率显着提高。传热速率由于波状壁的固液比,波幅和波数的变化而变化。当固体电导率约为流体电导率时,波浪形表面的冲击力会更大。确定Bejan数和熵生成以分析共轭混合对流的热力学优化。 (C)2018 Elsevier Ltd.保留所有权利。

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