首页> 外文期刊>International Journal of Modern Physics, B. Condensed Matter Physics, Statistical Physics, Applied Physics >Adomain computation of radiative-convective bi-directional stretching flow of a magnetic non-Newtonian fluid in porous media with homogeneous-heterogeneous reactions
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Adomain computation of radiative-convective bi-directional stretching flow of a magnetic non-Newtonian fluid in porous media with homogeneous-heterogeneous reactions

机译:ADOMAIN在多孔介质中具有均相非均相反应的磁性非牛顿液体辐射对流双向拉伸流动的辐射 - 对流双向拉伸流动

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摘要

In the present communication, the laminar, incompressible, hydromagnetic flow of an electrically conducting non-Newtonian (Sisko) fluid over a bi-directional stretching sheet in a porous medium is studied theoretically. Thermal radiation flux, homogeneous-heterogeneous chemical reactions and convective wall heating are included in the model. The resultant nonlinear ordinary differential equations with transformed boundary conditions via similarity transformation are then solved with the semi-analytical Adomain Decomposition Method (ADM). Validation with earlier studies is included for the nonradiative case. Extensive visualization of velocity, temperature and species concentration distributions for various emerging parameters is included. Increasing the magnetic field and inverse permeability parameter is observed to decelerate both the primary and secondary velocity magnitudes whereas they increase temperatures in the regime. Increasing sheet stretching ratio weakly accelerates the primary flow throughout the boundary layer whereas it more dramatically accelerates the secondary flow near sheet surface. Temperature is consistently reduced with increasing stretching sheet ratio whereas it is strongly enhanced with greater radiative parameter. With greater Sisko non-Newtonian powerlaw index the primary velocity and temperature are decreased whereas the secondary velocity is increased. Increasing both homogenous and heterogeneous chemical reaction parameters is found to weakly and more strongly, respectively, deplete concentration magnitudes whereas greater Schmidt number enhances them.
机译:在本文的通信中,从理论上研究了在多孔介质中的双向拉伸片上的导电非牛顿(Sisko)流体的层流,不可转印的氢细磁性流动。模型中包括热辐射通量,均相异质化学反应和对流壁加热。然后通过半分析adomain分解方法(ADM)解决了通过相似性转化的转化边界条件的所得非线性常微分方程。在非阵列案例中包含与早期研究的验证。包括广泛的速度可视化,各种新出现参数的浓度分布。观察到增加磁场和逆渗透率参数以减速初级和次级速度大小,而它们增加了该制度的温度。增加的薄片拉伸比弱加速了整个边界层的主流量,而它更大地加速了片材表面附近的二次流动。随着拉伸板坯的增加而持续减小温度,而用更大的辐射参数强大地增强。具有更大的Sisko非牛顿Powerlaw指数,初级速度和温度降低,而次要速度增加。增加均匀和异质化学反应参数分别为弱且更强烈,耗尽浓度幅度,而大量的施密特数增强它们。

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