带滑移效应的两种不混相耦合应力流体在圆柱管中通过多孔介质的磁流

Punnamchandar Bitla, Yitagesu Daba Kore
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摘要

本文分析研究了两种不混相耦合应力流体在均匀多孔介质中具有滑移效应的圆柱形管道中的稳态磁流体流动。从本质上讲,流动系统分为两个区域,区域I和区域II,分别占据系统的核心和外围。在平行于圆筒轴线方向上施加恒定压力梯度,并在垂直于流体运动方向的方向上施加外部均匀磁场,驱动流体流动。代替经典的无滑移条件,在刚性圆柱体表面取滑移速度和消失耦合应力边界条件,在流体-流体界面处施加速度、涡度、剪切应力和耦合应力的连续性条件。控制方程采用充分开发的流动条件进行建模。使用适当的无量纲变量将控制两个区域内流动的微分方程转换为无量纲形式。对无量纲方程进行了解析求解,导出了流速、流量和应力的贝塞尔函数封闭表达式。考察了磁数、耦合应力参数、达西数、黏度比、雷诺数、滑移参数等与流动有关的几个参数对相应区域速度的影响,并用图形说明了这些影响。计算了不同流体参数下的流量数值,并以表格形式显示。结果表明,增大磁数、黏度比、雷诺数和滑移参数会降低流体的速度,增大耦合应力参数、达西数和压力梯度会增大流体的速度。本文所得到的结果与已有文献中作为极限情况的结果非常吻合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hydromagnetic Flow of Two Immiscible Couple Stress Fluids through Porous Medium in a Cylindrical Pipe with Slip Effect
In this study, the steady hydromagnetic flow of two immiscible couple stress fluids through a uniform porous medium in a cylindrical pipe with slip effect is investigated analytically. Essentially, the flow system is divided into two regions, region I and region II, which occupy the core and periphery of the system, respectively. The flow is driven by a constant pressure gradient applied in a direction parallel to the cylinder’s axis, and an external uniform magnetic field is applied in the direction perpendicular to the direction of fluid motion. Instead of the classical no-slip condition, the slip velocity along with vanishing couple stress boundary conditions is taken on the surface of the rigid cylinder, and continuity conditions of velocity, vorticity, shear stress, and couple stress are imposed at the fluid-fluid interface. The governing equations are modeled using the fully developed flow conditions. The resulting differential equations governing the flow in the two regions are converted to nondimensional forms using appropriate dimensionless variables. The nondimensional equations are solved analytically, and closed-form expressions for the flow velocity, flow rate, and stresses are derived in terms of the Bessel functions. The impacts of several parameters pertaining to the flow such as the magnetic number, couple stress parameters, Darcy number, viscosity ratio, Reynolds number, and slip parameter on the velocities in respective regions are examined and illustrated through graphs. The flow rate’s numerical values are also calculated for different fluid parameters and displayed in tabular form. It is found that increasing the magnetic number, viscosity ratio, Reynolds number, and slip parameters decreases the velocities of the fluids whereas increasing the couple stress parameter, Darcy number, and pressure gradient increases fluid velocities. The results obtained in this paper show an excellent agreement with the already existing results in the literature as limiting cases.
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