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A new model for three-dimensional random roughness effect on friction factor and heat transfer in microtubes

机译:三维随机粗糙度对微管摩擦系数和传热影响的新模型

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In this paper we propose a novel bottom-up approach to generate a three-dimensional microtube surface with random roughness. This approach starts from four corner points with two defined coordinates and roughness height created by a Gaussian number generator, and then uses a bi-cubic Coons patch to form the curved surface. A computational fluid dynamics solver is used to isolate the roughness effect and solve the three-dimensional N-S equations for the water flow through the generated rough microtubes with diameter D = 50 μm and length L = 100 μm. No-slip, constant heat flux and periodic boundary conditions are applied to achieve the characteristics of fully developed flow. It is found that the wall roughness strongly affects the velocity near the wall and it almost has no effect on the flow at the center. When the mean diameter of a rough microtubes is used as the hydraulic diameter, the friction factor can still be predicted by the conventional flow theory. The temperature has large values at the peaks and small values at the valleys of the microtube surface. However, the roughness has almost no effect on the averaged Nusselt number Nu because the effects of peaks and valleys counteract each other for the whole micro-tube. The local Nusselt numbers along the microtube randomly scatter from the theoretical value with a deviation less than 2%. The model has a potential to be used for direct simulations of three-dimensional surface roughness effect on the slip flow.
机译:在本文中,我们提出了一种新颖的自下而上的方法来生成具有随机粗糙度的三维微管表面。此方法从高斯数发生器创建的具有两个定义的坐标和粗糙度高度的四个角点开始,然后使用双三次Coons贴片形成曲面。计算流体动力学求解器用于隔离粗糙度影响,并求解流经生成的直径为D = 50μm,长度为L = 100μm的粗糙微管的水流的三维N-S方程。采用防滑,恒定热通量和周期性边界条件来实现充分发展的流动特性。发现壁的粗糙度强烈影响壁附近的速度,并且几乎对中心处的流动没有影响。当使用粗糙的微管的平均直径作为水力直径时,仍然可以通过常规流动理论预测摩擦系数。温度在微管表面的峰值处具有较大的值,而在微管表面的谷处具有较小的值。但是,粗糙度对于平均努塞尔数Nu几乎没有影响,因为整个微管的峰谷效应相互抵消。沿微管的局部Nusselt数从理论值随机散布,偏差小于2%。该模型有可能用于直接模拟三维表面粗糙度对滑流的影响。

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