Zippel Seth F, Farrar J Thomas, Zappa Christopher J, Plueddemann Albert J
Woods Hole Oceanographic Institution Falmouth MA USA.
Lamont-Doherty Earth Observatory Columbia University Palisades NY USA.
Geophys Res Lett. 2022 Jan 28;49(2):e2021GL095920. doi: 10.1029/2021GL095920. Epub 2022 Jan 18.
The total rate of work done on the ocean by the wind is of considerable interest for understanding global energy balances, as the energy from the wind drives ocean currents, grows surface waves, and forces vertical mixing. A large but unknown fraction of this atmospheric energy is dissipated by turbulence in the upper ocean. The focus of this work is twofold. First, we describe a framework for evaluating the vertically integrated turbulent kinetic energy (TKE) equation using measurable quantities from a surface mooring, showing the connection to the atmospheric, mean oceanic, and wave energy. Second, we use this framework to evaluate turbulent energetics in the mixed layer using 10 months of mooring data. This evaluation is made possible by recent advances in estimating TKE dissipation rates from long-enduring moorings. We find that surface fluxes are balanced by TKE dissipation rates in the mixed layer to within a factor of two.
风对海洋所做的总功功率对于理解全球能量平衡具有重要意义,因为风能驱动洋流、产生表面波并促使垂直混合。这种大气能量的很大一部分,但具体比例未知,会在上层海洋中因湍流而耗散。这项工作有两个重点。首先,我们描述了一个框架,用于使用来自表面系泊设备的可测量量来评估垂直积分湍流动能(TKE)方程,展示其与大气、平均海洋和波浪能量的联系。其次,我们使用这个框架,利用10个月的系泊数据来评估混合层中的湍流能量学。最近在从长期系泊设备估计TKE耗散率方面的进展使得这种评估成为可能。我们发现,混合层中的表面通量与TKE耗散率之间的平衡在两倍的范围内。