Haider Ghulam, Ahmed Naveed
Department of Mathematics, Faculty of Sciences, HITEC University, Taxila Cantt, Pakistan.
Nanotechnology. 2023 Aug 21;34(45). doi: 10.1088/1361-6528/aced57.
The laminar boundary layer flow of a Zinc Oxide-Society of Automotive Engineers 50 alias nano-lubricant (ZnO-SAE50) past a permeable shrinking cylinder is investigated. The flow is unsteady, incompressible, and Ohmic dissipative. The present study holds immense significance in different engineering as well as scientific domains. It combines research on nanoparticle effects, unsteady flows, and solid surface interactions. The study claimed that the use ofZnO-SAE50nanofluid in the unsteady flow past a permeable shrinking cylinder led to significant heat transfer enhancement. The acquired results from the study would be fruitful in the fields of thermal engineering and heat transfer. The findings of the study can aid in optimizing cooling systems, heat exchangers, and energy-efficient designs. A governing model has been achieved for the flow and heat transfer by using conservation laws related to mass, momentum, and energy. Governing system of partial differential equations is solved to a nonlinear system of ordinary differential equations by using similarity transformation, which is later on solved with the help of the Shooting method and RK-Fehlberg duos. Plots are shown for both velocity and temperature profiles, to display the impacts of involved dimensionless parameters. Additionally, graphs for Nusselt Number have also been represented which shows the local rate of heat transfer. It is examined that the Ohmic dissipation as well as the volumetric ratio of the nanoparticles greatly influence the overall thermal performance of the system.
研究了氧化锌-美国汽车工程师协会50(ZnO-SAE50)纳米润滑剂以层流边界层流动经过可渗透收缩圆柱的情况。该流动是不稳定、不可压缩且存在欧姆耗散的。本研究在不同的工程和科学领域具有重大意义。它结合了对纳米颗粒效应、不稳定流动和固体表面相互作用的研究。该研究称,在经过可渗透收缩圆柱的不稳定流动中使用ZnO-SAE50纳米流体可显著增强热传递。该研究获得的结果将在热工程和热传递领域取得丰硕成果。该研究的发现有助于优化冷却系统、热交换器和节能设计。通过使用与质量、动量和能量相关的守恒定律,建立了流动和热传递的控制模型。利用相似变换将偏微分方程的控制系统转化为常微分方程的非线性系统,随后借助打靶法和龙格-库塔-费尔贝格对求解。给出了速度和温度分布的曲线,以显示相关无量纲参数的影响。此外,还给出了努塞尔数的图表,显示了局部热传递速率。研究发现,欧姆耗散以及纳米颗粒的体积比极大地影响了系统的整体热性能。