Physical analysis and thermal case of magnetized fluid flow and heat transfer via stretchable cylinder: Hall impact and entropy generation

IF 1.8 4区 物理与天体物理 Q3 PHYSICS, APPLIED
Essam M. Elsaid, Mohamed Abd El-Aziz, Abdelraheem M. Aly, Amani S. Alruwaili, Mohamed R. Eid
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Abstract

The study of fluid flow in cylindrical shapes under the effect of electric fields is of utmost importance because of its vast applications in industrial, agricultural, and biomedical domains, as well as in drilling machines, equipment, transport brakes, and vehicles. The purpose of this research is to analyze the influence of Hall impacts, slippage effects, and thermal relaxation time on the magnetohydrodynamic flow near an extended cylinder or flat plate. An assessment of entropy generation is carried out. Results are determined by the process of elongating a planar surface and a cylindrical object. The velocity field and entropy production are greater in the case of a stretched cylinder compared to a stretching flat plate. The choice of an appropriate stretching surface may have an impact on the thermal conductivity of the boundary layer. Velocity, temperature, and entropy are influenced by several factors including the Eckert number, thermal relaxation time, transverse curvature, magnetic field, Hall effect, molecular slip, and mixed convection parameters. These characteristics influence the movement of fluid, the transfer of heat, the measure of disorder (entropy), and the Bejan number. The variables mentioned cause changes in skin friction and Nusselt values. The Hall effect has advantages in reducing friction and enhancing heat transfer in industrial and technical processes.

通过可拉伸圆柱体进行磁化流体流动和热传递的物理分析和热案例:霍尔效应和熵的产生
电场作用下圆柱形流体流动的研究具有极其重要的意义,因为它在工业、农业、生物医学领域以及钻探机械、设备、运输制动器和车辆中有着广泛的应用。本研究的目的是分析霍尔效应、滑移效应和热弛豫时间对延伸圆柱体或平板附近磁流体流动的影响。对熵的产生进行了评估。结果由拉长平面和圆柱形物体的过程确定。与拉伸平板相比,拉伸圆柱体的速度场和熵的产生更大。选择适当的拉伸表面可能会对边界层的导热性产生影响。速度、温度和熵受多种因素影响,包括埃克特数、热弛豫时间、横向曲率、磁场、霍尔效应、分子滑移和混合对流参数。这些特性会影响流体运动、热量传递、无序度(熵)和贝扬数。上述变量会导致表皮摩擦力和努塞尔特值发生变化。霍尔效应在工业和技术流程中具有减少摩擦和增强传热的优势。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Modern Physics Letters B
Modern Physics Letters B 物理-物理:凝聚态物理
CiteScore
3.70
自引率
10.50%
发文量
235
审稿时长
5.9 months
期刊介绍: MPLB opens a channel for the fast circulation of important and useful research findings in Condensed Matter Physics, Statistical Physics, as well as Atomic, Molecular and Optical Physics. A strong emphasis is placed on topics of current interest, such as cold atoms and molecules, new topological materials and phases, and novel low-dimensional materials. The journal also contains a Brief Reviews section with the purpose of publishing short reports on the latest experimental findings and urgent new theoretical developments.
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