穿越倾斜磁场加速表面的微极性纳米流体流动的线性稳定性分析

IF 4 3区 工程技术 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
U.S. Mahabaleshwar, S.M. Sachin, A.B. Vishalakshi, Gabriella Bognar, Bengt Ake Sunden
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引用次数: 0

摘要

本文旨在研究具有共轭传热和传质的二维微极性流体流动。设计/方法/途径通过相似性变换将非线性偏微分方程转换为非线性常微分方程。然后,为了分析流动,作者推导出流动问题的对偶解。能量方程中包含了比奥特数和辐射效应。动量方程利用边界条件求解,温度方程利用超几何级数求解。努塞尔特数和皮肤摩擦系数作为雷诺数的函数进行计算。此外,该问题还受其他参数的制约,即磁参数、辐射参数、普朗特数和质量蒸发。由于石墨烯的高热导率,石墨烯纳米流体显示出良好的热导率增强效果,并在影响热边界层方面有着广泛的应用,可用作电子产品中的冷却剂和热管理系统,或各种工业流程中的传热流体。热源/散热参数会增加热边界层。增加体积分数会降低速度曲线,增加温度。增加 Eringen 参数会增加流体流动的动量。热源/散热器可应用于聚合物片材、薄膜和板材的挤出,塑料线材的制造,纤维的制造以及晶体的生长等。热源/散热器通常用于电子设备,将大功率半导体器件(如功率晶体管)和光电器件(如激光器和发光二极管)产生的热量传递到流体介质中,流体流动的热辐射用于光谱学研究材料的特性,也用于热成像捕捉和显示物体发出的红外辐射。能量方程中包含了毕奥特数和辐射效应。体积分数的增加会减小动量边界层厚度。努塞尔特数和表皮摩擦系数随雷诺数变化。得到了收缩表面的二元解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Linear stability analysis of micropolar nanofluid flow across the accelerated surface with inclined magnetic field

Purpose

The purpose of this paper is to study the two-dimensional micropolar fluid flow with conjugate heat transfer and mass transpiration. The considered nanofluid has graphene nanoparticles.

Design/methodology/approach

Governing nonlinear partial differential equations are converted to nonlinear ordinary differential equations by similarity transformation. Then, to analyze the flow, the authors derive the dual solutions to the flow problem. Biot number and radiation effect are included in the energy equation. The momentum equation was solved by using boundary conditions, and the temperature equation solved by using hypergeometric series solutions. Nusselt numbers and skin friction coefficients are calculated as functions of the Reynolds number. Further, the problem is governed by other parameters, namely, the magnetic parameter, radiation parameter, Prandtl number and mass transpiration. Graphene nanofluids have shown promising thermal conductivity enhancements due to the high thermal conductivity of graphene and have a wide range of applications affecting the thermal boundary layer and serve as coolants and thermal management systems in electronics or as heat transfer fluids in various industrial processes.

Findings

Results show that increasing the magnetic field decreases the momentum and increases thermal radiation. The heat source/sink parameter increases the thermal boundary layer. Increasing the volume fraction decreases the velocity profile and increases the temperature. Increasing the Eringen parameter increases the momentum of the fluid flow. Applications are found in the extrusion of polymer sheets, films and sheets, the manufacturing of plastic wires, the fabrication of fibers and the growth of crystals, among others. Heat sources/sinks are commonly used in electronic devices to transfer the heat generated by high-power semiconductor devices such as power transistors and optoelectronics such as lasers and light-emitting diodes to a fluid medium, thermal radiation on the fluid flow used in spectroscopy to study the properties of materials and also used in thermal imaging to capture and display the infrared radiation emitted by objects.

Originality/value

Micropolar fluid flow across stretching/shrinking surfaces is examined. Biot number and radiation effects are included in the energy equation. An increase in the volume fraction decreases the momentum boundary layer thickness. Nusselt numbers and skin friction coefficients are presented versus Reynolds numbers. A dual solution is obtained for a shrinking surface.

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来源期刊
CiteScore
9.50
自引率
11.90%
发文量
100
审稿时长
6-12 weeks
期刊介绍: The main objective of this international journal is to provide applied mathematicians, engineers and scientists engaged in computer-aided design and research in computational heat transfer and fluid dynamics, whether in academic institutions of industry, with timely and accessible information on the development, refinement and application of computer-based numerical techniques for solving problems in heat and fluid flow. - See more at: http://emeraldgrouppublishing.com/products/journals/journals.htm?id=hff#sthash.Kf80GRt8.dpuf
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