A Numerical Assessment of Time-Dependent Magneto-Convective Thermal-Material Transfer over a Vertical Permeable Plate

M. J. Uddin, R. Nasrin
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Abstract

The objective of this work is to investigate the influences of thermal radiation, heat generation, and buoyancy force on the time-dependent boundary layer (BL) flow across a vertical permeable plate. The fluid is unsteady, incompressible, viscous, and electrically insulating. The heat transfer mechanism happens due to free convection. The nondimensional partial differential equations of continuity, momentum, energy, and concentration are discussed using appropriate transformations. The impressions of thermal radiation and buoyancy forces are exposed in the energy and momentum equation, respectively. For numerical model, a set of nonlinear dimensionless partial differential equations can be solved using an explicit finite difference approach. The stability and convergence analyses are also established to complete the formulation of the model. The thermophysical effects of entering physical parameters on the flow, thermal, and material fields are analyzed. The variations in local and average skin friction, material, and heat transfer rates are also discussed for the physical interest. The analysis of the obtained findings is shown graphically, and relevant parameters pointedly prejudice the flow field. Studio Developer FORTRAN 6.2 and Tecplot 10.0 are applied to simulate the schematic model equations and graphical presentation numerically. The intensifying values of the magnetic field are affected decreasingly in the flow field. The temperature profiles decrease within the BL to increase the value of radiation parameters. The present study is on the consequences for petroleum engineering, agriculture engineering, extraction, purification processes, nuclear power plants, gas turbines, etc. To see the rationality of the present research, we compare these results and the results available in the literature with outstanding compatibility.
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垂直可渗透板上随时间磁对流热物质传递的数值计算
本文的目的是研究热辐射、热生成和浮力对垂直可渗透板上随时间变化的边界层(BL)流动的影响。这种流体是不稳定的、不可压缩的、粘性的和电绝缘的。传热机制是由自由对流引起的。用适当的变换讨论了连续性、动量、能量和浓度的无量纲偏微分方程。在能量和动量方程中分别揭示了热辐射和浮力的影响。对于数值模型,可以用显式有限差分法求解一组非线性无量纲偏微分方程。建立了稳定性和收敛性分析,完成了模型的推导。分析了输入物理参数对流场、热场和材料场的热物理效应。局部和平均皮肤摩擦,材料和传热率的变化也讨论了物理兴趣。对所得结果的分析用图形表示,相关参数有针对性地影响了流场。应用Studio Developer FORTRAN 6.2和Tecplot 10.0对原理图模型方程和图形表示进行了数值模拟。磁场的强化值在流场中受影响逐渐减小。边界层内温度分布减小,辐射参数值增大。目前的研究是对石油工程、农业工程、提取、净化过程、核电站、燃气轮机等的影响。为了证明本研究的合理性,我们将这些结果与文献中已有的结果进行了比较,具有突出的兼容性。
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