Gul Taza, Bilal M, Alghamdi Wajdi, Asjad M Imran, Abdeljawad Thabet
Mathematics Department, City University of Science and Information Technology, Peshawar, 25000, Pakistan.
Department of Information Technology, Faculty of Computing and Information Technology, King Abdulaziz University, Jeddah, 80261, Saudi Arabia.
Sci Rep. 2021 Jan 13;11(1):1180. doi: 10.1038/s41598-020-80750-y.
The thermal management of the flow of the hybrid nanofluid within the conical gap between a cone and a disk is analyzed. Four different cases of flow are examined, including (1) stationary cone rotating disk (2) rotating cone stationary disk (3) rotating cone and disk in the same direction and (4) rotating cone and disk in the opposite directions. The magnetic field of strength [Formula: see text] is added to the modeled problem that is applied along the z-direction. This work actually explores the role of the heat transfer, which performs in a plate-cone viscometer. A special type of hybrid nanoliquid containing copper Cu and magnetic ferrite FeO nanoparticles are considered. The similarity transformations have been used to alter the modeled from partial differential equations (PDEs) to the ordinary differential equations (ODEs). The modeled problem is analytically treated with the Homotopy analysis method HAM and the numerical ND-solve method has been used for the comparison. The numerical outputs for the temperature gradient are tabulated against physical pertinent variables. In particular, it is concluded that increment in volume fraction of both nanoparticles [Formula: see text] effectively enhanced the thermal transmission rate and velocity of base fluid. The desired cooling of disk-cone instruments can be gained for a rotating disk with a fixed cone, while the surface temperature remains constant.
分析了圆锥与圆盘之间锥形间隙内混合纳米流体流动的热管理。研究了四种不同的流动情况,包括:(1)固定圆锥旋转圆盘;(2)旋转圆锥固定圆盘;(3)圆锥和圆盘同向旋转;(4)圆锥和圆盘反向旋转。在沿z方向施加强度为[公式:见原文]的磁场的情况下对建模问题进行了研究。这项工作实际上探讨了在平板圆锥粘度计中发生的传热作用。考虑了一种包含铜(Cu)和磁性铁氧体(FeO)纳米颗粒的特殊类型的混合纳米流体。相似变换已被用于将建模问题从偏微分方程(PDE)转换为常微分方程(ODE)。采用同伦分析法(HAM)对建模问题进行解析处理,并使用数值ND求解法进行比较。针对与物理相关的变量列出了温度梯度的数值输出。特别地,得出结论:两种纳米颗粒的体积分数[公式:见原文]的增加有效地提高了热传递速率和基液速度。对于固定圆锥的旋转圆盘,可以实现圆盘圆锥仪器所需的冷却,同时表面温度保持恒定。