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首页> 外文期刊>Journal of thermal analysis and calorimetry >Group theoretical analysis for magnetohydrodynamic generalized Stokes' flow and radiative heat transfer model of a non-Newtonian nanofluid with heat generation/absorption
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Group theoretical analysis for magnetohydrodynamic generalized Stokes' flow and radiative heat transfer model of a non-Newtonian nanofluid with heat generation/absorption

机译:磁性动力学广义斯托克斯流量和发热/吸收非牛顿纳米流体流动和辐射传热模型的理论分析

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摘要

The fully developed boundary layer flow and heat transfer model of an unsteady, incompressible, electrically conducting, optically thick and thermodynamically compatible third-grade nanofluid are investigated from the viewpoint of Lie symmetry approach. We have studied the Stokes' model in which flow is generated due to motion of the bounding surface with an impulsive time-dependent velocity. The mathematical model also includes the effect of thermal radiation and internal heat source or sink in the flow regime. Lie symmetry approach is employed to obtain the symmetry algebra of the governing nonlinear partial differential equations for both flow and heat transfer models. The governing nonlinear partial differential equations describing the flow and heat transfer model are reduced to different classes of nonlinear ordinary differential equations under the implication of symmetry generators. The reduced ordinary differential equations are investigated using the compatibility and generalized group theoretical method. The exact closed-form solutions for nanofluid motion and temperature distribution within the boundary layer are obtained. The effect of various thermophysical parameters on the characteristics of flow and heat transfer for Cu-water nanofluid model is explored from a physical point of view.
机译:从李对称的观点出发,研究了非定常、不可压缩、导电、光学厚度和热力学相容的三级纳米流体的充分发展的边界层流动和传热模型。我们研究了斯托克斯模型,在该模型中,由于边界面的运动产生了与时间有关的脉冲速度。该数学模型还包括热辐射和流动状态下的内部热源或汇的影响。采用Lie对称方法获得了流动和传热模型的非线性偏微分方程的对称代数。在对称发生器的作用下,将描述流动和传热模型的控制非线性偏微分方程化为不同类型的非线性常微分方程。利用相容性和广义群论方法研究了约化常微分方程。得到了边界层内纳米流体运动和温度分布的精确闭式解。从物理角度探讨了不同热物理参数对铜-水纳米流体模型流动和传热特性的影响。

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