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具有粘性耗散的Casson纳米流体在旋转框架上受规定热流作用的三维流动的数值分析。

Numerical analysis of Casson nanofluid three-dimensional flow over a rotating frame exposed to a prescribed heat flux with viscous heating.

作者信息

Al-Kouz Wael, Owhaib Wahib

机构信息

Department of Mechanical and Maintenance Engineering, German Jordanian University, Amman, 11180, Jordan.

出版信息

Sci Rep. 2022 Mar 11;12(1):4256. doi: 10.1038/s41598-022-08211-2.

Abstract

This study investigates heat transfer characteristics and three-dimensional flow of non-Newtonian Casson nanofluid over a linearly stretching flat surface in the rotating frame of a reference. The current model includes the Buongiorno nanofluid model comprises nanoparticles' haphazard motion and thermo-migration. It also considered mechanisms for viscous heating and constant heat flux at the boundary. The nonlinear partial differential system modeling includes the non-Newtonian Casson fluid model and the boundary layer approximation. The system governing equations were nondimensionalized and numerically solved. A parametric study was conducted to analyze the significance of dimensionless parameters on velocities, the concentration, temperatures, Nusselt number, friction factors, and Sherwood number. The study reveals that the Casson nanoliquid temperature enhanced significantly due to the mechanisms of haphazard motion and thermo-migration. The momentum layer thickness of nano Casson fluid reduced due to the rotation phenomenon while the thermal layer structure amended notably. In the absence of rotation, there is no transverse velocity. The thermal layer structure is enhanced owing to the viscous heating process. The intense haphazard motion and thermo-migration mechanisms lead to maximum heat transfer rate at the plate. In addition, results show that the Coriolis force strength elevation shows similar axial and transverse velocities behavior. In addition, the nanoparticle concentration is observed higher due to the rotation aspect and Casson fluid parameter. Furthermore, the Casson fluid factor decreases with velocities, but the trend is the opposite for the high Casson fluid factor. The thermal and solute layer thickness growth is due to the nanoparticles' thermo-diffusion. In conclusion, the larger rotation factor increases the friction factors. The maximum plate heat transfer rate is when higher Nb and Nt are higher.

摘要

本研究调查了在旋转参考系中,非牛顿卡森纳米流体在直线拉伸平面上的传热特性和三维流动。当前模型包括布翁焦尔诺纳米流体模型,该模型包含纳米颗粒的随机运动和热迁移。它还考虑了粘性加热机制以及边界处的恒定热流。非线性偏微分系统建模包括非牛顿卡森流体模型和边界层近似。对控制方程组进行无量纲化并进行数值求解。进行了参数研究,以分析无量纲参数对速度、浓度、温度、努塞尔数、摩擦系数和舍伍德数的影响。研究表明,由于随机运动和热迁移机制,卡森纳米流体的温度显著升高。纳米卡森流体的动量层厚度由于旋转现象而减小,而热层结构有显著变化。在没有旋转的情况下,不存在横向速度。热层结构由于粘性加热过程而增强。强烈的随机运动和热迁移机制导致平板处的传热速率最大。此外,结果表明科里奥利力强度的升高呈现出相似的轴向和横向速度行为。此外,由于旋转因素和卡森流体参数,纳米颗粒浓度较高。此外,卡森流体因子随速度降低,但对于高卡森流体因子,趋势则相反。热层和溶质层厚度的增加是由于纳米颗粒的热扩散。总之,较大的旋转因子会增加摩擦系数。当较高的Nb和Nt较高时,平板传热速率最大。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/518e/8917233/620b71ad7b54/41598_2022_8211_Fig1_HTML.jpg

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