Feldmann Daniel, Morón Daniel, Avila Marc
Center of Applied Space Technology and Microgravity (ZARM), University of Bremen, Am Fallturm 2, 28359 Bremen, Germany.
Entropy (Basel). 2020 Dec 30;23(1):46. doi: 10.3390/e23010046.
Despite its importance in cardiovascular diseases and engineering applications, turbulence in pulsatile pipe flow remains little comprehended. Important advances have been made in the recent years in understanding the transition to turbulence in such flows, but the question remains of how turbulence behaves once triggered. In this paper, we explore the spatiotemporal intermittency of turbulence in pulsatile pipe flows at fixed Reynolds and Womersley numbers (Re=2400, Wo=8) and different pulsation amplitudes. Direct numerical simulations (DNS) were performed according to two strategies. First, we performed DNS starting from a statistically steady pipe flow. Second, we performed DNS starting from the laminar Sexl-Womersley flow and disturbed with the optimal helical perturbation according to a non-modal stability analysis. Our results show that the optimal perturbation is unable to sustain turbulence after the first pulsation period. Spatiotemporally intermittent turbulence only survives for multiple periods if puffs are triggered. We find that puffs in pulsatile pipe flow do not only take advantage of the self-sustaining lift-up mechanism, but also of the intermittent stability of the mean velocity profile.
尽管脉动管流中的湍流在心血管疾病和工程应用中具有重要意义,但人们对其仍知之甚少。近年来,在理解此类流动中向湍流的转变方面取得了重要进展,但一旦触发湍流,其行为方式仍是个问题。在本文中,我们研究了在固定雷诺数和沃默斯利数(Re = 2400,Wo = 8)以及不同脉动幅度下脉动管流中湍流的时空间歇性。根据两种策略进行了直接数值模拟(DNS)。首先,我们从统计稳定的管流开始进行DNS。其次,我们从层流塞克斯尔 - 沃默斯利流开始进行DNS,并根据非模态稳定性分析用最优螺旋扰动进行扰动。我们的结果表明,最优扰动在第一个脉动周期后无法维持湍流。时空间歇性湍流只有在触发气团时才能在多个周期中持续存在。我们发现脉动管流中的气团不仅利用了自持的提升机制,还利用了平均速度剖面的间歇性稳定性。