固定杆上大尺度冲击破碎波作用下的近床湍流动能预算:破碎波下的TKE预算

Q1 Earth and Planetary Sciences
J. Zanden, A. DominicA.vander, I. Cáceres, D. Hurther, S. McLelland, J. Ribberink, T. O'Donoghue
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引用次数: 17

摘要

在大型波浪水槽中,研究了固定破碎杆上规则俯冲破碎波作用下的水动力。先前的一篇论文报道了外流流体力学;本文着重研究了床层附近(距床层0.10 m处)的湍流动力学。采用双分量激光多普勒风速仪对风速进行了高时空分辨率的测量。结果表明,即使在离河床较近(1 mm)处,由于破波湍流的侵入,在浅滩区和破碎区之间的湍流动能(TKE)也增加了5倍。在距离床层约0.02 m的高度处(大约是边界层超调高度的两倍),随时间变化的雷诺剪应力的符号和相位行为主要受局部床层剪切产生的湍流控制,但在更高的海拔处,雷诺剪应力受破波湍流控制。随后对测量结果进行分析,以研究波平均和波内时间尺度上的TKE收支。水平和垂直湍流平流、产生和消散是主要术语。二维波均环流驱动破波湍流平流穿过近床层,导致沙洲槽区净向下流入,随后沿沙洲滨岸斜坡向海方向平流,在沙洲波峰上方向上流出。强烈的非均匀流动加上各向异性湍流的存在提高了床层附近的湍流产率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Near-Bed Turbulent Kinetic Energy Budget Under a Large-Scale Plunging Breaking Wave Over a Fixed Bar: TKE BUDGET UNDER BREAKING WAVES
Hydrodynamics under regular plunging breaking waves over a fixed breaker bar were studied in a large-scale wave flume. A previous paper reported on the outer flow hydrodynamics; the present paper focuses on the turbulence dynamics near the bed (up to 0.10 m from the bed). Velocities were measured with high spatial and temporal resolution using a two component laser Doppler anemometer. The results show that even at close distance from the bed (1 mm), the turbulent kinetic energy (TKE) increases by a factor five between the shoaling, and breaking regions because of invasion of wave breaking turbulence. The sign and phase behavior of the time-dependent Reynolds shear stresses at elevations up to approximately 0.02 m from the bed (roughly twice the elevation of the boundary layer overshoot) are mainly controlled by local bed-shear-generated turbulence, but at higher elevations Reynolds stresses are controlled by wave breaking turbulence. The measurements are subsequently analyzed to investigate the TKE budget at wave-averaged and intrawave time scales. Horizontal and vertical turbulence advection, production, and dissipation are the major terms. A two-dimensional wave-averaged circulation drives advection of wave breaking turbulence through the near-bed layer, resulting in a net downward influx in the bar trough region, followed by seaward advection along the bar's shoreward slope, and an upward outflux above the bar crest. The strongly nonuniform flow across the bar combined with the presence of anisotropic turbulence enhances turbulent production rates near the bed.
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来源期刊
Journal of Geophysical Research
Journal of Geophysical Research 地学-地球科学综合
CiteScore
5.80
自引率
0.00%
发文量
0
审稿时长
1 months
期刊介绍: Journal of Geophysical Research (JGR) publishes original scientific research on the physical, chemical, and biological processes that contribute to the understanding of the Earth, Sun, and solar system and all of their environments and components. JGR is currently organized into seven disciplinary sections (Atmospheres, Biogeosciences, Earth Surface, Oceans, Planets, Solid Earth, Space Physics). Sections may be added or combined in response to changes in the science.
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