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Flow Visualization and Heat Transfer Characteristics for Sphere-Packed Pipes

机译:球状管道的流动可视化和传热特性

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Particle image velocimetry visualization to identify the complex flow structures in a sphere-packed pipe is carried out by using a matched refractive-index method with a sodium iodide solution as the working fluid. The following three flows were confirmed as representative flow structures in the pipe: a meandrous bypass flow with a high-flow velocity due to the wall effect, two pairs of unstable twin vortices accompanied by a strong impinging flow to the pipe wall, and a spouting flow from the central area of the pipe. In an experiment on heat transfer using water as the working fluid, the wall-temperature distribution is measured with thermocouples and infrared thermography, which makes clear a relation between the flow structures and the local heat transfer performance. Though an area with a high wall temperature is formed by the flow stagnation located at a contact point between the sphere and the heating wall, the colliding effect of the high velocity and of the meandrous bypass flow with the spheres significantly affects the heat transport from the stagnation areas. On the other hand, the heat transfer performance is quite high in a large gap area between the upstream and downstream spheres because of the influence of the strong impinging flow and the vortices that are both induced by the meandrous bypass flow.
机译:通过使用匹配的折射率方法,以碘化钠溶液作为工作流体,进行颗粒图像测速可视化,以识别球形填充管道中的复杂流动结构。确认以下三种流动是管道中的代表性流动结构:由于壁效应而产生高流速的平均旁路流动,两对不稳定的双涡旋以及强烈冲击管道的流动以及喷出从管道中心区域流出。在以水为工作流体的传热实验中,利用热电偶和红外热像仪测量了壁温分布,这清楚地说明了流动结构与局部传热性能之间的关系。尽管位于球体和加热壁之间的接触点处的流动停滞形成了壁温高的区域,但高速和中间旁路流与球体的碰撞效应显着影响了从球体传热。停滞地区。另一方面,由于强烈的撞击流和涡流均由平均旁路流引起,因此在上游和下游球体之间的较大间隙区域中,传热性能很高。

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