Ag 􀀀 H2O 纳米流体在旋转多孔介质摆动表面上的三维磁流体力学流动数值研究

Rekha Devi, Shilpa Sood
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摘要

研究目的研究纳米流体(银-水)在可拉伸垂直振荡片上的三维流动。这项研究包括考虑片上的波动温度,并将其与自由流温度进行比较。导致纳米流体流动的非稳态边界层方程的表述还考虑了异质-同质化学反应和热辐射的发生。方法:通过适当的转换,以无量纲形式导出了控制方程和边界条件,然后使用 Matlab 软件中的 EFDS(显式有限差分方案)对其进行求解。Von-Neumann 稳定性分析用于确定该方法在网格大小不变的情况下的稳定性要求。研究结果获得了影响浓度场、温度分布和速度分布的物理因素,并通过图表进行了研究和详细描述。达到了收敛性和稳定性要求,从而获得了精确的解决方案。新颖性:本研究考虑了通过旋转多孔的 Ag - H2O 纳米流体在摆动表面上的三维磁流体流的温度波动和薄片拉伸速度。尝试确定了多孔介质渗透性、速度滑移、磁场、纳米颗粒体积分数、热辐射、旋转以及同质和异质化学反应参数的影响。关键词振荡面 传热 非线性 PDE 显式有限差分方案 纳米粒子
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Numerical Investigation of Three-Dimensional Magnetohydrodynamic Flow of Ag 􀀀 H2O Nanofluid Over an Oscillating Surface in a Rotating Porous Medium
Objective: To investigate the three-dimensional flow of a nanofluid (Ag-water) over a stretchable vertical oscillatory sheet. This study involves considering fluctuating temperatures on the sheet and comparing them to the free stream temperature. The formulation of the unsteady boundary layer equations leading to the flow of nanofluid also takes into consideration the occurrence of the heterogeneous-homogeneous chemical reaction and thermal radiation. Method: The governing equations and the boundary conditions have been derived in a dimensionless form by using the appropriate transformations, and they are then solved using an EFDS (Explicit Finite Difference Scheme) in Matlab software. The Von-Neumann stability analysis is used to determine the method’s stability requirements for constant sizes of the grid. Findings: The physical factors impact on the concentration fields, temperature distribution, and velocity distribution were obtained and are studied by graphs and described in extensive detail. Convergence and stability requirements are attained in order to achieve accurate solutions. Novelty: In this study fluctuations in the temperature and stretching velocity of sheet on three-dimensional magnetohydrodynamic flow of Ag − H2O nanofluid over an oscillating surface through rotating porous are taken into account. Impacts of porous media permeability, velocity slip, magnetic fields, nanoparticle volume fraction, heat radiation, rotation, and homogeneous and heterogeneous chemical reaction parameters had all been attempted to be determined. Keywords: Oscillatory Surface, Heat transmission, Nonlinear PDE, Explicit Finite Difference Scheme, Nanoparticle
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