微极性纳米流体在倾斜表面流动的热扩散效应分析:一个化工实例研究

IF 2.8 Q2 THERMODYNAMICS
Heat Transfer Pub Date : 2025-01-30 DOI:10.1002/htj.23297
B. Shankar Goud, Wasim Jamshed, Hijaz Ahmad, Rabia Safdar, Siti Suzilliana Putri Mohamed Isa, Syed M. Hussain, Mustafa Bayram, G. Dharmaiah
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引用次数: 0

摘要

本研究是为了研究纳米液体在可扩展表面上的微旋转流动。纳米材料在日常液体中的分散已成为纳米技术研究的主要焦点。在常规液体中分散纳米颗粒可以增加其导热性,这对产生和传递能量都很有用。这项研究的主要重点是能源运输。本研究使用了热辐射和Soret影响。Soret的影响也被考虑在内。这里的数值研究是基于Buongiorno模型。采用适当的相似变换,将流动数学方程转化为非线性常微分方程。本研究采用了流行的数值bvp4c方法。图形和表格用于说明物理量,其中包括由组件约束引起的许多影响。主要发现高磁场因素、热泳因素、布朗运动因素和辐射因素导致了高温分布。此外,热泳动因子和布朗运动因子对努塞尔数和舍伍德数的变化有增强作用。Nusselt数的增长受材料因子、Lewis数、辐射因子、Soret数和倾角的控制。热泳参数、辐射因子和倾角的存在使舍伍德数增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Thermal Diffusion Effect Analysis of Micropolar Nanofluid Flowing on Inclined Surface: A Chemical Engineering Case Study

This investigation was carried out to study the microrotational flow of nanoliquids across an extensible surface. The dispersion of nanomaterials in everyday liquids is becoming a major focus of nanotechnology. Dispersing nanoparticles in a conventional liquid increases its thermal conductivity, which is useful for both generating and transferring energy. The primary focus of this study has been on energy transportation. Thermal radiations and Soret implications were used in this investigation. The Soret impacts are also taken into account. Here, the numerical research is based on the Buongiorno model. Using suitable similarity conversions, the flow mathematical equations are converted into the nonlinear ordinary differential equations. This study makes use of the popular numerical bvp4c method. Graphs and tables are used to illustrate the physical quantities, which include a number of impacts that are caused by the constraints of the component. The key findings are that high magnetic field factor, thermophoresis factor, Brownian motion factor, and radiation factor cause high-temperature distribution. Moreover, thermophoresis and Brownian motion factors are responsible for enhancing the variation of Nusselt and Sherwood numbers. The growth in Nusselt number is controlled by the material factor, Lewis number, radiation factor, Soret number, and inclination angle. The presence of thermophoresis parameter, radiation factor, and inclination angle generate growth in Sherwood number.

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来源期刊
Heat Transfer
Heat Transfer THERMODYNAMICS-
CiteScore
6.30
自引率
19.40%
发文量
342
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