Entropy generation on inclined magnetize double diffusive convective transportation of radiative Casson nanofluid in porous medium with source/sink

IF 1.8 4区 物理与天体物理 Q3 PHYSICS, APPLIED
Vivek Kumar, Paras Ram, Kushal Sharma
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Abstract

This research intends to investigate the entropy generation on the magnetized double diffusive heat and mass transfer flow of the Casson nanofluid under the influence of an inclined magnetic field in a porous medium. Additionally, the combined impact of heat absorption, chemical reaction, Brownian diffusion, source/sink, and thermophoresis phenomena is also taken care of. The fluid flow involves convective boundary conditions for both temperature and concentration instead of a constant value at the surface. The flow-regulating system involved nonlinear PDEs that are turned into nonlinear systems of ODEs by using scaling variables and then solved this system numerically in Matlab using the bvp4c strategy, which is a collocation technique based on the Lobatto 3-stage FDM algorithm. Graphical representations illustrate the behavior of fluid velocity, entropy generation, concentration, and temperature in response to changes in flow parameters. Physical quantities like skin friction coefficient, Nusselt number, and Sherwood number have been investigated using 2D and 3D plots. Here, we concluded that the inclined magnetic field decimates the flow velocity gradually and greater values of the magnetic field lead to an increased rate of entropy generation. Furthermore, it has been noted that the temperature profile improves as the Brownian motion of particles increases, and the distribution of energy also enhances with larger values of the thermophoresis. The obtained key findings are discussed in a physical manner using graphic representation.
带源/沉的多孔介质中辐射卡松纳米流体的倾斜磁化双扩散对流输送的熵产生
本研究旨在探讨多孔介质中的卡松纳米流体在倾斜磁场影响下的磁化双扩散传热和传质流动的熵产生。此外,还考虑了吸热、化学反应、布朗扩散、源/沉和热泳现象的综合影响。流体流动涉及温度和浓度的对流边界条件,而不是表面的恒定值。流量调节系统涉及非线性 PDE,通过使用比例变量将其转化为非线性 ODE 系统,然后在 Matlab 中使用 bvp4c 策略对该系统进行数值求解,该策略是一种基于 Lobatto 3 级 FDM 算法的配位技术。图表说明了流体速度、熵产生、浓度和温度随流动参数变化而变化的情况。我们还使用二维和三维图形研究了表皮摩擦系数、努塞尔特数和舍伍德数等物理量。在此,我们得出结论:倾斜磁场会逐渐减弱流速,而磁场值越大,熵产生率越高。此外,我们还注意到,随着粒子布朗运动的增加,温度曲线也会改善,能量分布也会随着热泳值的增大而增强。本文使用图形表示法,以物理方式讨论了所获得的主要发现。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Modern Physics Letters B
Modern Physics Letters B 物理-物理:凝聚态物理
CiteScore
3.70
自引率
10.50%
发文量
235
审稿时长
5.9 months
期刊介绍: MPLB opens a channel for the fast circulation of important and useful research findings in Condensed Matter Physics, Statistical Physics, as well as Atomic, Molecular and Optical Physics. A strong emphasis is placed on topics of current interest, such as cold atoms and molecules, new topological materials and phases, and novel low-dimensional materials. The journal also contains a Brief Reviews section with the purpose of publishing short reports on the latest experimental findings and urgent new theoretical developments.
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