粘性耗散MHD UCM流体在挤压板间流动的热质传递特性半解析分析

Q1 Chemical Engineering
Pareekshith G. Bhat , Ali J. Chamkha , Nityanand P. Pai , Sampath Kumar V.S.
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引用次数: 0

摘要

本研究力求从理论上考察磁流体动力学上对流麦克斯韦流体在平行板挤压通道中的传热传质特性。由于其广泛的应用,如润滑系统和轴承,在研究中分析了上部对流麦克斯韦流体通过通道的流动,该通道包括一个移动的不渗透顶板和一个固定的多孔底部,除了挤压运动外,还负责注入和吸入效果。控制流体力学守恒定律的基本方程采用相似变换和边界条件将其转化为非线性常微分方程组。然后用同伦摄动法逼近得到的非线性常微分方程,得到近似解析解。根据对模型产生物理影响的不同相关参数,绘制了有关速度、时间和浓度分布的各种图形。观测到时间分布场随Eckert数的增大和辐射参数的减小而增大。此外,值得注意的是,浓度分布随着辐射参数的增加和埃克特数的减少而上升。此外,针对研究中涉及的不同相关参数,给出了与表面摩擦系数、传热传质率相对应的数值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

A semi-analytical analysis on transfer behaviour of heat and mass on the viscous dissipated MHD UCM fluid flow between squeezing plates

A semi-analytical analysis on transfer behaviour of heat and mass on the viscous dissipated MHD UCM fluid flow between squeezing plates
The current study strives to theoretically examine the heat and mass transfer properties on the magnetohydrodynamic upper convected Maxwell fluid flow through a squeezing channel of parallel plates. Due to its vast applications, such as lubrication systems and bearing, the flow of upper convected Maxwell fluid through the channel comprising a moving impermeable top plate and a stationary porous bottom that is responsible for injection and suction effects in addition to squeezing motion is analysed in the study. The fundamental equations governing the conservation laws of fluid mechanics are transfigured into a non-linear system of ordinary differential equations adopting similarity transformations along with the boundary conditions. The so-obtained non-linear ordinary differential equations are then approached by the homotopy perturbation method to achieve an approximate analytic solution. Various graphs concerning the velocity, temporal, and concentration profiles are plotted against distinct pertinent parameters that pose a physical impact on the model. It is observed that the temporal distribution field elevates with a rise in the Eckert number and a decrease in the radiation parameter. Further, it is noticed that the concentration profile upsurges with a hike in the radiation parameter and depletion in the Eckert number. Moreover, the numerical values corresponding to the coefficient of skin friction, and rates of heat and mass transfer are tabulated for distinct pertinent parameters involved in the study.
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来源期刊
International Journal of Thermofluids
International Journal of Thermofluids Engineering-Mechanical Engineering
CiteScore
10.10
自引率
0.00%
发文量
111
审稿时长
66 days
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