理查森数对带传热和传质的倾斜 MHD 混合对流的影响

IF 2.8 Q2 THERMODYNAMICS
Heat Transfer Pub Date : 2024-05-09 DOI:10.1002/htj.23069
U. S. Mahabaleshwar, T. Anusha, S. M. Sachhin, Dia Zeidan, Sang Woo Joo
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引用次数: 0

摘要

研究了多孔板上具有热量和质量传递的二维混合对流 MHD 流动的杜富尔和索雷特机制行为。在基础流体水中使用了铜-氧化铝(Cu-Al2O3)混合纳米粒子。通过相似变换将偏微分方程的支配系统转换成常微分方程系统,从而得到指数形式的速度场、温度场和浓度场的解。在达西-布林克曼模型中演示了该问题,并借助图表研究了所含参数(如理查德森数、磁场和杜富尔数)对所获解的影响。增加磁场会降低横向和轴向速度曲线。增加磁场和理查德森数会减小溶液(Al2O3-H2O)。增加磁场值和理查德森数会降低横向和轴向速度剖面。增加杜富尔效应值会增加轴向和横向速度边界层。多孔介质上的磁流体混合纳米流体流在液体冷却中工作效率很高,因此在工业加热和冷却系统、太阳能、磁流体流量计和泵、制造业、再生热交换、热能储存、太阳能集热器、地热回收和化学催化反应器中有着重要的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An impact of Richardson number on the inclined MHD mixed convective flow with heat and mass transfer

The two-dimensional mixed convective MHD flow with heat and mass transfer is investigated for its behavior with Dufour and Soret mechanisms over the porous sheet. The copper–alumina (Cu–Al2O3) hybrid nanoparticles are used in the base fluid water. The governing system of partial differential equations is converted into a system of ordinary differential equations via similarity transformations, obtaining the solution for velocity, temperature, and concentration fields in exponential form. The problem is demonstrated in the Darcy–Brinkman model, the impact of included parameters such as Richardson number, magnetic field, and Dufour numbers are studied for the obtained solution with the help of graphs. Increasing the magnetic field decreases both transverse and axial velocity profiles. Increasing the magnetic field and Richardson's number decreases the solution (Al2O3–H2O). Increasing the values magnetic field and Richardson's number decreases both transverse and axial velocity profiles. Increasing the values of the Dufour effect increases the axial and transverse velocity boundary layer. The magnetohydrodynamic hybrid nanofluid flow over porous media works efficiently in liquid cooling and, therefore, has significant applications in industrial heating and cooling systems, solar energy, magnetohydrodynamic flow meters and pumps, manufacturing, regenerative heat exchange, thermal energy storage, solar power collectors, geothermal recovery, and chemical catalytic reactors.

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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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