非牛顿纳米材料耗散磁流体流的不可逆性分析

IF 3.1 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Tasawar Hayata, Zobia Kainata, S. A. Khana, A. Alsaedi
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引用次数: 0

摘要

本文的主题是通过拉伸表面来研究莱纳-菲利普夫纳米流体的磁流熵率。利用耗散和焦耳加热热力学第一定律建立能量方程。此外,还讨论了随机运动和热泳运动。此外,还讨论了二元反应。讨论了不可逆性分析的物理特性。通过适当的变换得到非线性表达式。通过数值方法(bvp4c)对得到的系统进行求解。讨论了熵率、热场、速度分布和浓度随各种变量的变化。以表格的形式研究了热传率和质量传率对影响参数的计算结果。磁变量对热场和速度有相反的影响。宾汉姆数越高,速度场越大。注意到热泳变量的热场和浓度的增强。流体变量的增大导致速度增大。在磁效应的熵分析中可以看到一个增量。更大的扩散变量估计值提高了熵率。注意到反应变量的浓度降低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Irreversibility analysis in dissipative magnetohydromagnetic flow of non-Newtonian nanomaterials
The theme of this article is to scrutinize the entropy rate in hydromagnetic flow of Reiner–Philippoff nanofluid by a stretching surface. Energy equation is developed through first law of thermodynamic with dissipation and Joule heating. Furthermore, random and thermophoretic motion is discussed. Additionally, binary reaction is discussed. Physical feature of irreversibility analysis is discussed. Nonlinear expression is obtained by suitable transformation. The obtained systems are solved through the numerical method (bvp4c). Variation of entropy rate, thermal field, velocity profile, and concentration against sundry variables are discussed. Computational outcomes of thermal and mass transport rate for influential parameters are studied in tabularized form. A reverse effect holds for thermal field and velocity through magnetic variable. Higher Bingham number leads to a rise in velocity field. An intensification in thermal field and concentration is noted for thermophoretic variable. An enhancement in fluid variable leads to augments velocity. An increment in entropy analysis is seen for magnetic effect. Larger estimation of diffusion variable improves entropy rate. A reduction in concentration is noticed for reaction variable.
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来源期刊
Nanomaterials and Nanotechnology
Nanomaterials and Nanotechnology NANOSCIENCE & NANOTECHNOLOGY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
7.20
自引率
21.60%
发文量
13
审稿时长
15 weeks
期刊介绍: Nanomaterials and Nanotechnology is a JCR ranked, peer-reviewed open access journal addressed to a cross-disciplinary readership including scientists, researchers and professionals in both academia and industry with an interest in nanoscience and nanotechnology. The scope comprises (but is not limited to) the fundamental aspects and applications of nanoscience and nanotechnology
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