拉布拉多海表层湍流动能耗散观测

S. Gremes-Cordero
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引用次数: 1

摘要

本文利用2004年夏季在拉布拉多海的相干多普勒声纳收集的现场测量数据,对上层海洋湍流动能耗散率进行了分析。声纳以0.8 cm的空间分辨率记录了2 m以上的水平速度波动,首次实现了对波数谱的直接计算,并应用Kolmogorov理论获得了该地区的湍流动能耗散率。该项目为研究浮游植物繁殖期间的海气交换提供了一个独特的机会,这是第一次在这种特殊事件中部署专门的海气相互作用浮标。该实验的另一个独特之处在于,它是第一个在高纬度地区获得的湍流动能耗散率观测,恰好是在一个众所周知的致密水形成区域,在全球环流和全球气候变化预测研究中都起着重要作用。关注湍流动能耗散率与上层2 m波相的关系,我们估计了0(10−4)湍流动能耗散率,与之前通过类似装置和方法得到的估计一致。在波峰和波谷处计算的耗散率之间的t检验表明,湍流动能耗散率与2 m深度的波相无关,这与许多早期的发现相吻合。本文还讨论了与先前的研究结果相冲突的比较,将它们与实验设计变化、不同的动力框架和特定的环境条件的相对作用联系起来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Observations of turbulent kinetic energy dissipation at the Labrador Sea surface layer
We present an analysis of turbulent kinetic energy dissipation rates in the upper ocean using in situ measurements collected by a coherent Doppler sonar in the Labrador Sea during summer 2004. The sonar recorded horizontal velocity fluctuations of the upper 2 m with an uncommonly small spatial resolution of 0.8 cm, allowing direct calculations of wavenumber spectra and the application of Kolmogorov theory to obtain turbulent kinetic energy dissipation rates for the first time in this area. The project presented a unique opportunity for the study of air–sea exchange during a phytoplankton bloom, being the first time a specialized air–sea interaction spar buoy was deployed during such particular event. An additional uniqueness of this experiment resulted from being the first turbulent kinetic energy dissipation rate observations obtained at higher latitudes, coincidentally in a well-known region of dense water formation, with a fundamental role in both global circulation and forecasting studies of global climate change. Focusing on the relationship between turbulent kinetic energy dissipation rates and wave phase in the upper 2 m, we estimated O ( 10 − 4 ) turbulent kinetic energy dissipation rates, consistent with previous estimates obtained through similar devices and methods. A T-test between dissipation rates calculated at the crest and at the trough of waves showed no dependency of turbulent kinetic energy dissipation rates on the wave phase at 2 m depth, coinciding with many of the earlier findings available. a comparison with previous research showing conflicting results with our values is also discussed here linking them to the relative roles of experimental design variations, diverse dynamical frames, and particular environmental conditions.
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