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Analysis of magnetohydrodynamic natural convection in closed cavities through integral transforms

机译:通过积分变换分析封闭腔中的磁流体动力学自然对流

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摘要

A hybrid numerical-analytical solution is proposed to analyze MHD (magnetohydrodynamic) natural convection of an electrically-conducting fluid within a square cavity, differentially heated at the sidewalls and subjected to an inclined external magnetic field. The first goal is to expand the spectrum of application of the so called Generalized Integral Transform Technique (GITT), dealing with a multiphysics formulation, while further demonstrating the relative merits of the proposed eigenfunction expansion approach in handling highly nonlinear and coupled systems of partial differential equations. The second goal is to provide a set of benchmark results in this important application for quantities of practical interest in determining the heat transfer rates, such as the average Nusselt number. The two-dimensional steady state equations are written in dimensionless form using the streamfunction-only formulation and are subsequently solved with the GITT approach, under automatic relative error control. Critical comparisons are performed against previous work reported in the literature, both computational and experimental, together with the corresponding physical interpretations, for different values of the governing parameters, such as Grashof number, Hartmann number, Prandtl number, and magnetic field inclination angle.
机译:提出了一种混合数值分析解决方案,用于分析方腔内导电流体的MHD(磁流体动力学)自然对流,该流体在侧壁处受到差异加热并受到倾斜的外部磁场的影响。第一个目标是扩展所谓的广义积分变换技术(GITT)的应用范围,处理多物理场公式,同时进一步证明拟议的本征函数扩展方法在处理高度非线性和耦合的偏微分系统中的相对优点。方程。第二个目标是,在此重要应用中提供一组基准结果,用于确定传热速率(例如平均努塞尔数)方面具有实际意义的数量。使用仅使用流函数的公式将二维稳态方程以无量纲形式编写,然后在自动相对误差控制下使用GITT方法求解。对于控制参数的不同值(例如,Grashof数,Hartmann数,Prandtl数和磁场倾角),对计算和实验文献中先前报道的工作进行了关键比较,包括相应的物理解释。

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