纳米颗粒和热源/散热器对具有Soret和Dufour效应的Cu-H2O纳米流体流过垂直板的MHD流动的作用

IF 1.9 Q2 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Ramesh Kune, H. Naik, B. S. Reddy, C. Chesneau
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引用次数: 2

摘要

研究了非定常非牛顿卡森流体在垂直板上的作用。对卡森流体进行了数学分析,考虑了索雷特效应和杜福尔效应、热产生、热辐射和化学反应。该问题的新颖之处在于,在控制流体中加入铜水基纳米颗粒前后,对卡森流体的物理解释。结果表明,速度减小,温度分布增强。利用相似变换将控制流的关联偏微分方程转化为非线性耦合常微分方程。利用有限元方法对动量、能量和浓度公式进行了解析。热层和溶质层厚度的增长是由于纳米颗粒的热扩散。讨论了卡森流体参数、辐射、Soret和Dufour效应、化学反应和普朗特数等相关参数的影响。给出了活动参数对应的平均努塞尔数与舍伍德数的相关性。可以注意到,增加杜福尔数会导致传热的上升。流体速度随格拉绍夫数增大而增大,随磁效应减小而减小。热源和辐射的影响是增加导热系数。浓度随施密特数减小。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Role of Nanoparticles and Heat Source/Sink on MHD Flow of Cu-H2O Nanofluid Flow Past a Vertical Plate with Soret and Dufour Effects
The study is devoted to investigating the effect of an unsteady non-Newtonian Casson fluid over a vertical plate. A mathematical analysis is presented for a Casson fluid by taking into consideration Soret and Dufour effects, heat generation, heat radiation, and chemical reaction. The novelty of the problem is the physical interpretation of Casson fluid before and after adding copper water-based nanoparticles to the governing flow. It is found that velocity was decreased and the temperature profile was enhanced. A similarity transformation is used to convert the linked partial differential equations that control flow into non-linear coupled ordinary differential equations. The momentum, energy, and concentration formulations are cracked by means of the finite element method. The thermal and solute layer thickness growth is due to the nanoparticles’ thermo-diffusion. The effects of relevant parameters such as the Casson fluid parameter, radiation, Soret and Dufour effects, chemical reaction, and Prandtl number are discussed. A correlation of the average Nusselt number and Sherwood number corresponding to active parameters is presented. It can be noticed that increasing the Dufour number leads to an uplift in heat transfer. Fluid velocity increases with Grashof number and decreases with magnetic effect. The impact of heat sources and radiation is to increase the thermal conductivity. Concentration decreases with the Schmidt number.
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来源期刊
Mathematical & Computational Applications
Mathematical & Computational Applications MATHEMATICS, INTERDISCIPLINARY APPLICATIONS-
自引率
10.50%
发文量
86
审稿时长
12 weeks
期刊介绍: Mathematical and Computational Applications (MCA) is devoted to original research in the field of engineering, natural sciences or social sciences where mathematical and/or computational techniques are necessary for solving specific problems. The aim of the journal is to provide a medium by which a wide range of experience can be exchanged among researchers from diverse fields such as engineering (electrical, mechanical, civil, industrial, aeronautical, nuclear etc.), natural sciences (physics, mathematics, chemistry, biology etc.) or social sciences (administrative sciences, economics, political sciences etc.). The papers may be theoretical where mathematics is used in a nontrivial way or computational or combination of both. Each paper submitted will be reviewed and only papers of highest quality that contain original ideas and research will be published. Papers containing only experimental techniques and abstract mathematics without any sign of application are discouraged.
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