RESPONSES OF TURBULENT CHANNEL FLOWS TO TEMPORAL ACCELERATION

Seo Yoon Jung, Kyoungyoun Kim
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Abstract

The effects of mean flow acceleration on near-wall turbulent structures were investigated by performing direct numerical simulations of transient turbulent flows in a channel. The simulations were initiated with a fully developed turbulent channel flow and then temporal accelerations were applied. During the acceleration, almost linearly increasing excursions of the flow rate were imposed between the steady initial and final values. The initial Reynolds number (based on the friction velocity) was fixed to Reτ,i = 180, and four different final Reynolds numbers (Reτ, f = 250, 300, 350, and 395) were selected to show the effects of the Reynolds number ratio (Reτ, f /Reτ,i) on the transient channel flows. To elucidate the effects of the flow acceleration rates on the near-wall turbulence, a wide range of acceleration durations has been examined. Various turbulent statistics and instantaneous flow fields revealed that the rapid increase in the flow rate invokes bypass-transition-like phenomena in the transient flow. In contrast, the flow evolves progressively and the transition does not occur clearly for the mild flow acceleration. When the increase in the Reynolds number is small during the acceleration, distinct bypass-like transition phenomena do not appear in the transient flows, regardless of the acceleration rate. The present study proposed new criteria based on the impulse of the acceleration in order to explain the transition to the new turbulence in the transient channel flow. The bypass-like transition is primarily due to the larger contribution of the impulse to the increase in the flow rate compared with that in viscous friction.
湍流沟道水流对时间加速度的响应
通过对通道内瞬态湍流的直接数值模拟,研究了平均流动加速度对近壁湍流结构的影响。模拟开始于一个完全发育的湍流通道,然后施加时间加速度。在加速过程中,在稳定的初始值和最终值之间施加了几乎线性增加的流量偏移。将初始雷诺数(基于摩擦速度)固定为Reτ,i = 180,并选择四个不同的最终雷诺数(Reτ, f = 250, 300, 350和395)来显示雷诺数比(Reτ, f /Reτ,i)对瞬态通道流动的影响。为了阐明流动加速速率对近壁湍流的影响,研究了大范围的加速持续时间。各种湍流统计数据和瞬时流场表明,流量的快速增加在瞬态流动中引起了类似旁通过渡的现象。而在轻度加速下,流动是渐进式的,过渡不明显。当加速过程中雷诺数增加较小时,无论加速速率如何,瞬态流动都不会出现明显的类旁道过渡现象。本文提出了基于加速度冲量的新判据,以解释瞬态通道流向新湍流的过渡。这种类旁路的过渡主要是由于冲量对流量增加的贡献比粘滞摩擦时更大。
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