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MHD boundary layer flow and heat transfer of a nanofluid past a permeable stretching sheet with velocity, thermal and solutal slip boundary conditions

机译:MHD边界层通过速度,热和溶滑边界条件流过可渗透拉伸片的纳米流体的流动和传热

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摘要

In this analysis, the boundary layer flow and heat transfer over a permeable stretching sheet due to a nanofluid with the effects of magnetic field, slip boundary condition and thermal radiation have been investigated. The transport equations used in the analysis took into account the effect of Brownian motion and thermophoresis parameters. The solution for the velocity, temperature and nanoparticle concentration depends on parameters viz. thermal radiation parameter R, Prandtl number Pr, Lewis number Le, Brownian motion parameter Nb, thermophoresis parameter Nt, Eckert number Ec, magnetic parameter M and slip parameters. Similarity transformation is used to convert the governing non-linear boundary-layer equations into coupled higher order non-linear ordinary differential equations. These equations are numerically solved using fourth order Runge-Kutta method along with shooting technique. An analysis has been carried out to elucidate the effects of governing parameters corresponding to various physical conditions. Numerical results are obtained for distributions of velocity, temperature and concentration, as well as, for the skin friction, local Nusselt number and local Sherwood number for several values of governing parameters. The results indicate that the local Nusselt number decreases with an increase in both Brownian motion parameter Nb and thermophoresis parameter Nt. However, the local Sherwood number increases with an increase in both thermophoresis parameter Nt and Lewis number Le, but it decreases as the values of Nb increase. Besides, it was found that the surface temperature of a sheet increases with an increase in the Eckert number Ec. A comparison with previous studies available in the literature has been done and we found an excellent agreement with it.
机译:在此分析中,研究了纳米流体在磁场,滑移边界条件和热辐射的影响下,边界层在渗透性拉伸片上的流动和传热。分析中使用的传输方程考虑了布朗运动和热泳参数的影响。速度,温度和纳米粒子浓度的解决方案取决于参数viz。热辐射参数R,普朗特数Pr,路易斯数Le,布朗运动参数Nb,热泳参数Nt,埃克特数Ec,磁参数M和滑动参数。使用相似变换将控制的非线性边界层方程转换为耦合的高阶非线性常微分方程。这些方程使用四阶Runge-Kutta方法以及射击技术进行数值求解。已经进行了分析以阐明对应于各种物理条件的控制参数的影响。对于几个控制参数值,获得了速度,温度和浓度分布以及皮肤摩擦,局部Nusselt数和局部Sherwood数的数值结果。结果表明,局部布朗氏数随着布朗运动参数Nb和热泳参数Nt的增加而减小。然而,局部Sherwood数随着热泳参数Nt和路易斯数Le的增加而增加,但是随着Nb值的增加而减少。此外,发现片的表面温度随着埃克特数Ec的增加而升高。与文献中已有的研究进行了比较,我们发现与它的极好的一致性。

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