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Energy transport analysis in the flow of Burgers nanofluid inspired by variable thermal conductivity

机译:通过可变导热率启发的汉堡纳米流体流动的能量运输分析

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The rheology of Burgers nanofluid flow over a stretching cylinder with convective transport of thermal and solutal energy is studied in the present article. The relaxation and retardation properties of viscoelastic fluid are examined for flow field and energy distribution. Moreover, the thermophoretic and Brownian forces are also incorporated in the phenomena of thermal and solutal energy distribution. The thermal conductivity of the fluid is taken as temperature dependent. The homotopy analysis method (HAM) is adopted to solve the governing ordinary differential equations (ODEs). The impact of physical parameters on the flow field and energy transport is depicted using graphs. The outcomes proved that both thermophoretic and Brownian forces significantly boosted the temperature field but in the case of concentration field these show conflicting behaviour. The Burgers parameter of viscoelastic fluid enhances the thermal and solutal conduction in the fluid and decreases the fluid velocity. Moreover, due to the increase in temperature-dependent thermal conductivity, the transport of energy increases. The outcomes of this study are validated by comparing numerical data with some previous studies.
机译:在本文中研究了汉堡纳米流体流过拉伸圆筒的脉冲流体流变。检查粘弹性流体的弛豫和延迟性能,用于流场和能量分布。此外,蒸发器和褐色力也掺入热和溶性能量分布的现象中。流体的导热率被依赖于温度。采用同型分析方法(火腿)来解决控制常微分方程(ODES)。使用图描绘了物理参数对流场和能量传输的影响。结果证明,硫化机和褐色力量都显着提高了温度场,但在集中场的情况下,这些表现出矛盾的行为。粘弹性液的汉堡参数增强了流体中的热和溶性传导并降低了流体速度。此外,由于温度依赖性导热率的增加,能量运输增加。通过将数值数据与一些先前的研究进行比较来验证本研究的结果。

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