首页> 外文期刊>Communications in Nonlinear Science and Numerical Simulation >Numerical study of magnetohydrodynamic viscous plasma flow in rotating porous media with Hall currents and inclined magnetic field influence
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Numerical study of magnetohydrodynamic viscous plasma flow in rotating porous media with Hall currents and inclined magnetic field influence

机译:霍尔电流和倾斜磁场影响下旋转多孔介质中磁流体动力粘性等离子体流的数值研究

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A numerical solution is developed for the viscous, incompressible, magnetohydrodynamic flow in a rotating channel comprising two infinite parallel plates and containing a Darcian porous medium, the plates lying in the x-z plane, under constant pressure gradient. The system is subjected to a strong, inclined magnetic field orientated to the positive direction of the y-axis (rotational axis, normal to the x-z plane). The Navier-Stokes flow equations for a general rotating hydromagnetic flow are reduced to a pair of linear, viscous partial differential equations neglecting convective acceleration terms, for primary velocity (u') and secondary velocity (v') where these velocities are directed along the x and y axes. Only viscous terms are retained in the momenta equations. The model is non-dimensionalized and shown to be controlled by a number of dimensiontess parameters. The resulting dimen-sionless ordinary differential equations are solved using a robust numerical method, Network Simulation Methodology. Full details of the numerics are provided. The present solutions are also benchmarked against the analytical solutions presented recently by Ghosh and Pop [Ghosh SK, Pop 1. An analytical approach to MHD plasma behaviour of a rotating environment in the presence of an inclined magnetic field as compared to excitation frequency. Int J Appl Mech Eng 2006;11(4):845-856] for the case of a purely fluid medium (infinite permeability). We study graphically the influence of Hartmann number [Ha, magnetic field parameter), Ekman number (Ek, rotation parameter), Hall current parameter (Nh), Darcy number (Da, permeability parameter), pressure gradient (Np) and also magnetic field inclination (0) on primary and secondary velocity fields. Additionally we investigate the effects of these multiphysical parameters on the dimensionless shear stresses at the plates. Both primary and secondary velocity are seen to be increased with a rise in Darcy number, owing to a simultaneous reduction in Darcian drag force. Primary velocity is seen to decrease with an increase in Hall current parameter (Nh) but there is a decrease in secondary velocity. The study finds important applications in magnetic materials processing, hydromagnetic plasma energy generators, magneto-geophysics and planetary astrophysics.
机译:针对旋转通道中的粘性,不可压缩的磁流体动力学流动,提出了一种数值解决方案,该旋转通道包括两个无限的平行板并包含一个Darcian多孔介质,这些板在恒定压力梯度下位于x-z平面中。该系统受到指向y轴(旋转轴,垂直于x-z平面)正方向的强倾斜磁场的影响。一般旋转的磁流体的Navier-Stokes流动方程简化为一对线性,粘性偏微分方程,其中忽略了对流加速度项,即初级速度(u')和次级速度(v')沿速度x和y轴。动量方程中仅保留粘性项。该模型未进行尺寸标注,并显示受多个尺寸标注参数控制。使用稳健的数值方法“网络仿真方法”来求解所得的无量纲常微分方程。提供了数字的完整详细信息。本解决方案还以Ghosh和Pop [Ghosh SK,Pop 1最近提出的分析解决方案为基准。一种分析方法,用于分析与激励频率相比存在倾斜磁场的旋转环境的MHD等离子体行为。 Int J Appl Mech Eng 2006; 11(4):845-856]对于纯流体介质(无限渗透率)的情况。我们以图形方式研究哈特曼数[Ha,磁场参数),埃克曼数(Ek,旋转参数),霍尔电流参数(Nh),达西数(Da,磁导率参数),压力梯度(Np)以及磁场的影响初级和次级速度场的倾斜度(0)。另外,我们研究了这些多物理参数对平板上无因次剪应力的影响。由于达西阻力的同时减小,初级和次级速度都随着达西数的增加而增加。随霍尔电流参数(Nh)的增加,初级速度会降低,但次级速度会降低。该研究发现在磁性材料加工,水磁等离子体能量发生器,磁地球物理学和行星天体物理学中的重要应用。

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