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首页> 外文期刊>Current Climate Change Reports >Bejan’s Heat Flow Visualization for Unsteady Micropolar Fluid Past a Vertical Slender Hollow Cylinder with Large Grashof Number
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Bejan’s Heat Flow Visualization for Unsteady Micropolar Fluid Past a Vertical Slender Hollow Cylinder with Large Grashof Number

机译:BEJAN的热流可视化对于非稳定的微柱液过去的垂直细长空心圆柱体,具有大的GRASHOF数量

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摘要

AbstractThe heat function concept has been developed for the heatline visualization to study the conjugate heat transfer effects at large Grashof number. The time-dependent natural convective micropolar fluid flow past a vertical slender hollow cylinder with the inner wall kept at a uniform temperature is the physical model. The mathematical model of this problem is given by highly time reliant non-linear coupled equations and is resolved by an efficient unconditionally stable implicit scheme. The time histories of average values of momentum and heat transport coefficients as well as the steady-state velocity, microrotation and temperature are plotted for different values of non-dimensional parameters arising in the system across the boundary layer. As the vortex viscosity parameter increases, the time taken for the flow-field variables to attain the time-independent state decreases, while the reverse trend is noticed for the conjugate heat transfer parameter. The dimensionless heat function values are closely associated with the overall rate of heat transfer. The Bejan’s heat flow visualization implies that the heat function contours are compact in the neighborhood of leading edge of the hot cylindrical wall. It is observed that as the vortex viscosity parameter values get amplified, the deviations of heatlines from the heated wall is more. It is seen that the deviations of flow variables from the heated wall for a micropolar fluid are significant compared to the Newtonian fluid.]]>
机译:<![CDATA [<摘要ID =“ABS1”语言=“EN”OutputMedium =“全部”> <标题>抽象 ara id =“par1”>已经为热线可视化开发了热功能概念研究大型格雷什数的共轭传热效应。时间依赖性的自然对流微柱流体流过垂直细长的空心圆柱,其内壁保持在均匀温度下是物理模型。该问题的数学模型由高度依赖性非线性耦合方程给出,并且通过有效无条件稳定的隐式方案来解决。动量和传热系数的平均值的时间历史以及稳态速度,微观运动和温度绘制在边界层的系统中产生的不同价值。随着涡流粘度参数的增加,流场变量以达到空行动状态所花费的时间减少,而缀合物传热参数的注意力被识别。无量纲热函数值与传热速率密切相关。 Bejan的热流可视化意味着热函数轮廓在热圆柱壁的前缘附近紧凑。观察到,随着涡旋粘度参数值得到放大,热线来自加热壁的偏差更多。可以看出,与牛顿液相比,从加热壁与用于微柱流体的加热壁的偏差。 ]]>

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