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Drag reduction of Newtonian fluid in a circular pipe with a highly water-repellent wall

机译:具有高度疏水性的圆形管道中牛顿流体的减阻作用

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Drag reduction phenomena, in which 14% drag reduction of tap water flowing in a 16 mm-diameter pipe occurs in the laminar flow range, have been clarified. Experiments were carried out to measure the pressure drop and the velocity profile of tap water and an aqueous solution of glycerin flowing in pipes with highly water-repellent walls, by using a pressure transducer and a hot-film anemometer, respectively. The same drag reduction phenomena also occurred in degassed tap water when using a vacuum tank. The velocity profile measured in this experiment gives the slip velocity at the pipe wall, and it was shown that the shear stress is directly proportional to the slip velocity. The friction factor formula for a pipe with fluid slip at the wall has been obtained analytically from the exact solution of the Navier-Stokes equation, and it agrees well qualitatively with the experimental data. The main reasons for the fluid slip are that the molecular attraction between the liquid and the solid surface is reduced because the free surface energy of the solid is very low and the contact area of the liquid is decreased compared with a conventional smooth surface because the solid surface has many fine grooves. Liquid cannot flow into the fine grooves owing to surface tension. These concepts are supported by the experimental result that drag reduction does not occur in the case of surfactant solutions.
机译:减阻现象已得到澄清,在层流范围内,在16毫米直径的管道中流动的自来水减阻了14%。通过使用压力传感器和热膜风速计分别进行实验以测量自来水和甘油水溶液在具有高度疏水壁的管道中流动的压降和速度分布。使用真空罐时,在脱气的自来水中也发生了相同的减阻现象。在该实验中测得的速度曲线给出了管壁的滑动速度,并且表明剪切应力与滑动速度成正比。通过Navier-Stokes方程的精确解可以解析得出壁上有流体滑移的管道的摩擦因数公式,它在质量上与实验数据吻合良好。流体滑移的主要原因是,与传统的光滑表面相比,由于固体的自由表面能非常低,液体和固体表面之间的分子吸引力降低了,因为固体的自由表面能降低了液体的接触面积;表面有许多细微的凹槽。由于表面张力,液体无法流入细槽。这些概念得到实验结果的支持,即在表面活性剂溶液的情况下不会发生减阻作用。

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