Hydrodynamic metamaterial redirector for steering fluid flow in pipelines with arbitrary curvatures

Haixiang Pang, Yunxiang You, Ke Chen
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Abstract

The dynamics of fluid-conveying pipelines with different shapes has received extensive research attention. Significant wall shear stress and flow separation occur when the fluid flows through pipelines with various curvatures. These phenomena trigger pipeline vibration, the generation of mechanical and hydrodynamic noise, damage, and even the rupture of the pipeline. However, previous studies have not considered the mechanism of internal pipeline flow to eliminate flow separation and the generation of secondary flow inside bent pipelines by redirecting and manipulating the flow. To steer the fluid flow, a ‘hydrodynamic transformation strategy’ based on the metamaterial technology is proposed for the first time in this work; through this strategy, the fluid in pipelines can be made to flow along trajectories that are always parallel to the central axis of the bent pipelines. Interestingly, this innovative method can effectively eliminate the elbow-induced secondary flow and prevent the generation of a pressure gradient toward the pipeline wall. Using the soft lithography technology or the three-dimensional printing technology, the hydrodynamic metamaterial microstructure required to manipulate the fluid flow path in actual engineering applications can be achieved. Our work paves the way for developing new approaches for controlling the flow characteristics and reducing the turbulence intensity of the fluid flowing in pipelines with elbows and corners.
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用于引导任意曲率管道中流体流动的流体动力超材料改向器
不同形状流体输送管道的动力学研究受到广泛关注。当流体流经具有不同曲率的管道时,会产生巨大的管壁剪应力和流动分离。这些现象会引发管道振动、产生机械和流体动力噪声、损坏甚至管道破裂。然而,以往的研究并没有考虑到管道内部流动的机理,即通过重新定向和操纵流动来消除弯曲管道内部的流动分离和二次流动的产生。为了引导流体流动,本文首次提出了一种基于超材料技术的 "流体动力转换策略";通过这种策略,可以使管道中的流体沿着始终平行于弯曲管道中心轴线的轨迹流动。有趣的是,这种创新方法可以有效消除弯管引起的二次流,并防止向管道壁产生压力梯度。利用软光刻技术或三维打印技术,可以实现在实际工程应用中操纵流体流动路径所需的流体力学超材料微结构。我们的工作为开发新的方法来控制带弯头和拐角的管道中流体的流动特性和降低湍流强度铺平了道路。
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