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Distinct large-scale turbulent-laminar states in transitional pipe flow

机译:过渡管流中不同的大规模湍流层流状态

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When fluid flows through a channel, pipe, or duct, there are two basic forms of motion: smooth laminar motion and complex turbulent motion. The discontinuous transition between these states is a fundamental problem that has been studied for more than 100 yr. What has received far less attention is the large-scale nature of the turbulent flows near transition once they are established. We have carried out extensive numerical computations in pipes of variable lengths up to 125 diameters to investigate the nature of transitional turbulence in pipe flow. We show the existence of three fundamentally different turbulent states separated by two distinct Reynolds numbers. Below Re_1 approx = 2,300, turbulence takes the form of familiar equilibrium (or longtime transient) puffs that are spatially localized and keep their size independent of pipe length. At Re_1 the flow makes a striking transition to a spatio-temporally intermittent flow that fills the pipe. Irregular alternation of turbulent and laminar regions is inherent and does not result from random disturbances. The fraction of turbulence increases with Re until Re_2 approx = 2,600 where there is a continuous transition to a state of uniform turbulence along the pipe. We relate these observations to directed percolation and argue that Re_1 marks the onset of infinite-lifetime turbulence.
机译:当流体流经通道,管道或管道时,有两种基本运动形式:平滑的层流运动和复杂的湍流运动。这些状态之间的不连续过渡是一个已经研究了100多年的基本问题。一旦建立,湍流在过渡附近的大范围性质就很少受到关注。我们已经对长度不超过125的可变长度的管道进行了广泛的数值计算,以研究管道流动中过渡湍流的性质。我们显示了被两个不同的雷诺数分开的三个根本不同的湍流状态的存在。低于Re_1约等于2,300,湍流采取熟悉的平衡(或长时间瞬态)抽吸的形式,这些抽吸在空间上是局部的,并且其大小与管道长度无关。在Re_1处,流量突然过渡到填充管道的时空间歇流量。湍流和层流区域的不规则交替是固有的,并且不是由随机扰动引起的。湍流的分数随Re的增加而增加,直到Re_2大约等于2,600,在该处沿管道连续过渡到均匀湍流的状态。我们将这些观察结果与定向渗滤联系起来,并认为Re_1标志着无限期湍流的开始。

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