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Effects of Arrhenius activation energy in development of covalent bonding in axisymmetric flow of radiative-Cross nanofluid

机译:阿雷尼乌斯活化能对辐射-交叉纳米流体轴对称流动中共价键形成的影响

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摘要

Numerical simulation and mathematical modeling are presented to propose the innovative concept of activation energy and binary chemical reaction aspects on unsteady axisymmetric flow of Cross nanofluid past a radially stretching surface. Non-linear thermal radiation is also taken into account. A revised model of nanoparticles is adopted to examine the impact of thermophoresis as well as Brownian diffusion on heat transfer mechanism. Boundary layer approximation is implemented to model the basic equations of nanoparticle concentration, thermal energy and momentum for Cross nanofluid in axisymmetric flow case. We have employed dimensionless quantities to alter the leading PDEs into nonlinear ODEs system. The numerical simulation is executed with the help of shooting Runge-Kutta Fehlberg approach. The heat transfer rate and resistance opposing to flow are measured with the guidance of Nusselt number and skin friction coefficient relations respectively. Fabulous results are achieved and also compared with existing work and noticed to be in excellent agreement. It is interesting to found that larger estimation of activation energy parameter resulted in the increment of nanoparticle concentration field. Additionally, nanoparticle concentration layer thickness is depreciated for higher values of temperature difference parameter and chemical reaction rate parameter. Furthermore, magnitude of surface drag force is diminished for appreciating values of Weissenberg number.
机译:通过数值模拟和数学建模,提出了关于跨纳米流体通过径向拉伸表面的非稳态轴对称流动时活化能和二元化学反应方面的创新概念。还考虑了非线性热辐射。采用修正后的纳米颗粒模型来检查热泳以及布朗扩散对传热机理的影响。进行边界层近似以模拟轴对称流动情况下交叉纳米流体的纳米粒子浓度,热能和动量的基本方程式。我们采用了无量纲的量来将领先的PDE转换为非线性ODE系统。借助Runge-Kutta Fehlberg方法进行数值模拟。分别在Nusselt数和皮肤摩擦系数关系的指导下测量传热速率和与流动相反的阻力。取得了惊人的结果,并且与现有工作进行了比较,并被认为是非常一致的。有趣的是发现活化能参数的更大估计导致纳米粒子浓度场的增加。另外,对于温差参数和化学反应速率参数的较高值,降低纳米颗粒浓缩层的厚度。此外,减小了表面拖曳力的大小,以增加魏森伯格数的值。

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