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Velocity Profiles and Wall Shear Stress in Turbulent Transient Pipe Flow

机译:湍流瞬变管流中的速度分布和壁剪应力

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Experimental measurements of the wall shear stress combined to those of the velocity profiles via the electrochemical technique and ultrasonic pulsed Doppler velocimetry, are used to analyse the flow behaviour in transient pipe flow caused by a downstream sudden valve closure. Velocity data are analyzed and the corresponding wall shear stress values are evaluated, leading to a discussion on transient energy dissipation by comparison with results obtained by the electrochemical technique. The Reynolds number of the steady flow based on the pipe diameter is Re=140000. The results show that the quasi-steady approach of representing unsteady friction is valid during the initial phase for relatively large decelerations. For higher decelerations, the unsteady wall shear stress is consistently higher than the quasi-steady values obtained from the velocity profiles. An examination of the range of applicability of the instantaneous-acceleration model shows that the empirical coefficient of unsteady friction is closely linked to the deceleration intensity. This study is made possible owing to the repeatability of different valve closures allowing data to be averaged over numerous tests.
机译:通过电化学技术和超声脉冲多普勒测速仪将壁面剪切应力与速度分布曲线相结合的实验测量结果用于分析下游突然关闭阀门引起的瞬态管道流动中的流动行为。分析速度数据并评估相应的壁切应力值,通过与电化学技术获得的结果进行比较,讨论瞬态能量耗散问题。基于管径的稳定流的雷诺数为Re = 140000。结果表明,表示非定常摩擦的准稳态方法在初始阶段对于较大的减速度是有效的。对于更高的减速度,非恒定壁剪应力始终高于从速度曲线获得的准恒定值。对瞬时加速度模型适用范围的研究表明,非定常摩擦的经验系数与减速强度密切相关。由于不同阀门关闭的可重复性,使得这项研究成为可能,从而可以在众多测试中对数据进行平均。

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