雷诺数对横向行进面波减阻机制的影响

IF 2 3区 工程技术 Q3 MECHANICS
Esther Lagemann, Marian Albers, Christian Lagemann, Wolfgang Schröder
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引用次数: 0

摘要

本研究探讨了在受跨向横向表面波主动控制的湍流边界层流动中摩擦阻力减小的机理。重点讨论了低雷诺数和中高雷诺数下的阻力减小机制。在以低摩擦速度为基础的雷诺数(Re_\tau \approx 393)下,由表面致动诱发的周期性二次流场与准流向涡流相互作用。这些漩涡的椭圆变形会导致其破裂,由于高速条纹随之减弱,减少的数量会降低整个壁面剪切应力水平。在中等高雷诺数(Re_\tau \approx 1525\)时,这种机制的有效性降低,但会出现第二种因素,即内外相互作用。对流层的大尺度运动对近壁流场的影响较小,因为近壁区域的表面激励引入的大尺度喷射平衡了外层的扫掠。由于外层对内部区域的影响会随着雷诺数的增大而加剧,因此外层的破坏有利于将这种减少阻力的方法成功应用到工程相关的雷诺数上。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Impact of Reynolds Number on the Drag Reduction Mechanism of Spanwise Travelling Surface Waves

Impact of Reynolds Number on the Drag Reduction Mechanism of Spanwise Travelling Surface Waves

The mechanism that provokes friction drag reduction in a turbulent boundary layer flow which is actively controlled by spanwise travelling transversal surface waves is investigated. The focus is on discussing the drag reducing mechanism for a low and a moderately high Reynolds number. At the low friction velocity based Reynolds number \(Re_\tau \approx 393\), the periodic secondary flow field induced by the surface actuation interacts with the quasi-streamwise vortices. An elliptic deformation of these vortices initiates their breakup and the reduced amount lowers the overall wall-shear stress level due to the consequently attenuated high-speed streaks. At the moderately high Reynolds number \(Re_\tau \approx 1525\), the effectiveness of this mechanism is reduced but a second contributor occurs, which manipulates the inner–outer interaction. The large-scale motions of the log layer can less effectively impose their footprint onto the near-wall flow field since large-scale ejections, which are introduced by the surface actuation in the near-wall region, balance the outer-layer sweeps. Since the outer-layer impact on the inner region is intensified by increasing Reynolds number, its disruption is beneficial as to a successful application of this drag reduction method to engineering relevant Reynolds numbers.

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来源期刊
Flow, Turbulence and Combustion
Flow, Turbulence and Combustion 工程技术-力学
CiteScore
5.70
自引率
8.30%
发文量
72
审稿时长
2 months
期刊介绍: Flow, Turbulence and Combustion provides a global forum for the publication of original and innovative research results that contribute to the solution of fundamental and applied problems encountered in single-phase, multi-phase and reacting flows, in both idealized and real systems. The scope of coverage encompasses topics in fluid dynamics, scalar transport, multi-physics interactions and flow control. From time to time the journal publishes Special or Theme Issues featuring invited articles. Contributions may report research that falls within the broad spectrum of analytical, computational and experimental methods. This includes research conducted in academia, industry and a variety of environmental and geophysical sectors. Turbulence, transition and associated phenomena are expected to play a significant role in the majority of studies reported, although non-turbulent flows, typical of those in micro-devices, would be regarded as falling within the scope covered. The emphasis is on originality, timeliness, quality and thematic fit, as exemplified by the title of the journal and the qualifications described above. Relevance to real-world problems and industrial applications are regarded as strengths.
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