Magnetohydrodynamic orientation effects on Soret and Dufour phenomena in inclined corrugated triangular cavities with non-Newtonian fluids

IF 6.4 2区 工程技术 Q1 MECHANICS
Syed Saqib Shah
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Abstract

This research delves into the intricate influence of magnetohydrodynamic orientation on Soret and Dufour effects within inclined, corrugated triangular cavities containing non-Newtonian fluids, underscoring the impacts of magnetic alignment, cavity inclination, and fluid rheology on convective transport dynamics. By systematically transforming the governing partial differential equations into non-dimensional forms using selected similarity variables, the study applies the finite element method (FEM) for computational analysis. The research intricately dissects the influence of multiple interdependent physical parameters on flow morphology, concentration, isotherms, and local Nusselt numbers, which serve as a barometer for the system's heat transfer efficacy. Critical variables under scrutiny for include magnetohydrodynamics (0Ha103), buoyancy-driven convective forces (0Nχ20), the non-Newtonian nature of Casson fluid (0.1β1), as well as the cross-diffusion effects epitomized by the Soret (15Sχ15) phenomena. Additional dimensionless parameters, such as the Lewis (0.1Lε50) and Rayleigh numbers (102Ra105), further characterize the thermal and concentration fields within the cavity, alongside the role of internal heat generation/absorption (10Δ10) mechanisms for fixed value of Darcy number (λd=103). The results show that the Casson parameter subtly affects the distribution of thermal energy and particles, which in turn influences flow patterns and convection. In contrast, the Soret parameter has a direct effect on concentration gradients, regulating the layering of solutes within the fluid. It has been found that inclined MHD orientation effects create variations in magnetic fields, which disrupt fluid velocity and affect heat transfer rates. These effects reshape temperature contours, altering isotherm patterns and local thermal gradients. The study underscores the complex interplay of non-linear factors that collectively govern the efficiency of heat and mass transfer processes in non-Newtonian fluids subjected to magnetothermal and buoyancy forces, with broad implications for optimizing industrial and natural convection systems.
磁流体定向对倾斜波纹三角腔内非牛顿流体的索雷特和杜富尔现象的影响
这项研究深入探讨了磁流体力学取向对包含非牛顿流体的倾斜波纹状三角形空腔内的索雷特效应和杜富尔效应的复杂影响,强调了磁排列、空腔倾斜度和流体流变学对对流传输动力学的影响。通过使用选定的相似变量,系统地将支配偏微分方程转换为非一维形式,该研究采用有限元法(FEM)进行计算分析。研究细致地剖析了多个相互依存的物理参数对流动形态、浓度、等温线和局部努塞尔特数的影响,这些参数是系统传热效率的晴雨表。需要仔细研究的关键变量包括磁流体动力学(0≤Ha≤103)、浮力驱动的对流力(0≤Nχ≤20)、卡松流体的非牛顿性质(0.1≤β≤1)以及索雷特(-15≤S≤15)现象所体现的交叉扩散效应。其他无量纲参数,如路易斯数(0.1≤Lε≤50)和瑞利数(102≤Ra≤105),进一步描述了空腔内的热场和浓度场,以及在达西数固定值(λd=10-3)下内部热量产生/吸收(-10≤Δ≤10)机制的作用。结果表明,卡松参数会微妙地影响热能和颗粒的分布,进而影响流动模式和对流。相比之下,索雷特参数直接影响浓度梯度,调节流体中溶质的分层。研究发现,倾斜的 MHD 方向效应会产生磁场变化,从而扰乱流体速度并影响传热速率。这些效应重塑了温度轮廓,改变了等温线模式和局部热梯度。这项研究强调了非线性因素之间复杂的相互作用,这些非线性因素共同控制着受磁热力和浮力作用的非牛顿流体中热量和质量传递过程的效率,对优化工业和自然对流系统具有广泛的影响。
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来源期刊
CiteScore
11.00
自引率
10.00%
发文量
648
审稿时长
32 days
期刊介绍: International Communications in Heat and Mass Transfer serves as a world forum for the rapid dissemination of new ideas, new measurement techniques, preliminary findings of ongoing investigations, discussions, and criticisms in the field of heat and mass transfer. Two types of manuscript will be considered for publication: communications (short reports of new work or discussions of work which has already been published) and summaries (abstracts of reports, theses or manuscripts which are too long for publication in full). Together with its companion publication, International Journal of Heat and Mass Transfer, with which it shares the same Board of Editors, this journal is read by research workers and engineers throughout the world.
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