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Flow and Heat Transfer of Nanofluid over a Stretching Sheet with Non-linear Velocity in the Presence of Thermal Radiation and Chemical Reaction

机译:在热辐射和化学反应存在下具有非线性速度的拉伸片的纳米流体的流动和传热

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In this paper, the effects of Brownian motion, thermophoresis, chemical reaction, heat generation, magnetohydrodynamic and thermal radiation has been included in the model of nanofluid flow and heat transfer over a moving surface with variable thickness. The similarity transformation is used to transform the governing boundary layer equations into ordinary differential equations (ODE). Both optimal homotopy asymptotic method (OHAM) and Runge-Kutta fourth order method with shooting technique are employed to solve the resulting ODEs. For different values of the pertinent parameters on the velocity, temperature and concentration profiles have been studied and details are given in tables and graphs respectively. A comparison with the previous study is made, where an excellent agreement is achieved. The results demonstrate that the radiation parameter N increases, with the increase in both the temperature and the thermal boundary layer thickness respectively. While the nanoparticles concentration profiles increase with the influence of generative chemical reaction y < 0, while it decreases with destructive chemical reaction y> 0.
机译:在本文中,已被列入纳米流体流动和传热在具有可变厚度的一移动表面的模型布朗运动,热泳,化学反应,发热,磁流体动力学和热辐射的影响。相似性转换用于将控制边界层方程转换为常微分方程(ODE)。采用具有拍摄技术的最佳同型渐近方法(OHAM)和Runge-Kutta第四订单方法来解决所产生的杂散。对于速度,研究的相关参数的不同值,已经研究了温度和浓度分布,并分别在表格和图表中给出了细节。制定了与前一项研究的比较,在那里实现了良好的协议。结果表明,辐射参数n增加,分别增加了温度和热边界层厚度。虽然纳米颗粒浓度突出随着生成的化学反应Y <0的影响而增加,但由于破坏性化学反应Y> 0而降低。

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