具有活化能的化学反应磁流体非稳态微波纳米流体在倾斜拉伸片上流动时产生的熵:布昂奥诺模型方法

IF 2.3 4区 工程技术 Q2 ENGINEERING, MECHANICAL
T Aarathi, Anala Subramanyam Reddy, K Jagadeshkumar, Vallampati Ramachandra Prasad, O Anwar Bég
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引用次数: 0

摘要

本研究的目的是检测微极性流体在穿过倾斜拉伸表面时,其停滞点流体的传热和传质趋势以及熵的产生。为此,研究了暴露在正交磁场中的化学反应性导电流体。流动控制方程使用 Buongiorno 模型进行建模,并通过适当的相似变换转换为高阶常微分方程系统。通过采用四阶 Runge-Kutta 方案和射击方法,对该系统进行了定量研究。研究了热辐射、磁场、均匀热源/沉、布朗运动、热泳、活化能和二元化学反应对速度、微浮力、温度和浓度曲线的影响。研究发现,磁场和布朗运动会提高流动温度。活化能的增加会使流体浓度飙升,而二元化学反应的增加则会降低颗粒浓度。随后,各种参数对表皮摩擦系数以及传热和传质速率的影响被制成表格。热泳扩散参数、布朗扩散参数和化学反应参数值的增加会提高传质速率。当不稳定参数值从 0.7 增加到 1.0 时,皮肤摩擦系数增加了 53.2%。粘性耗散和热辐射增加了熵的产生率。表皮摩擦系数与以往研究的比较结果表明两者非常吻合。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Entropy generation in a chemically reactive magnetohydrodynamic unsteady micropolar nanofluid flow with activation energy over an inclined stretching sheet: A Buongiorno model approach
The goal of this research is to inspect the heat and mass transfer trends and entropy generation in a time-reliant stagnation point stream of a micropolar fluid across an inclined stretched surface. For this objective, a chemically reactive, electrically conducting fluid exposed to an orthogonal magnetic field is studied. The flow governing equations are modelled using Buongiorno model and are reformed to a system of higher order ordinary differential equations by administering appropriate similarity transformations. This system is quantitatively examined by employing the fourth-order Runge-Kutta scheme with shooting approach. The effects of thermal radiation, magnetic field, uniform heat source/sink, Brownian motion, thermophoresis, activation energy, and binary chemical reaction are studied on velocity, microrotation, temperature, and concentration profiles. It is observed that magnetic field and Brownian motion elevate the flow temperature. Increased activation energy spikes the fluid concentration while increase in binary chemical reaction reduces the particle concentration. Later, impact of various parameters on skin friction coefficient and heat and mass transfer rates are tabularised. Increasing values of thermophoretic diffusion parameter, Brownian diffusion parameter, and chemical reaction parameter improve the rate of mass transfer. Unsteadiness parameter triggers the skin friction coefficient 53.2% when the parameter value was increased from 0.7 to 1.0. Viscous dissipation and thermal radiation increase the rate of entropy generation. A comparison of skin friction coefficient with previous studies demonstrates a strong agreement.
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来源期刊
CiteScore
3.80
自引率
16.70%
发文量
370
审稿时长
6 months
期刊介绍: The Journal of Process Mechanical Engineering publishes high-quality, peer-reviewed papers covering a broad area of mechanical engineering activities associated with the design and operation of process equipment.
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