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Tropical storm-induced near-inertial internal waves during the Cirene experiment: energy fluxes and impact on vertical mixing

机译:Cirene实验期间热带风暴诱发的近惯性内波:能量通量及其对垂直混合的影响

摘要

Near-inertial Internal Waves (NIW) excited by storms and cyclones play an essential role in driving turbulent mixing in the thermocline and interior ocean. Storm-induced mixing may be climatically relevant in regions like the thermocline ridge in the southwestern Indian Ocean, where a shallow thermocline and strong high frequency wind activity enhance the impact of internal gravity waveinduced mixing on sea surface temperature. The Cirene research cruise in early 2007 collected shipborne and mooring vertical profiles in this region under the effect of a developing tropical cyclone. In this paper, we characterize the NIW field and the impact of these waves on turbulent mixing in the upper ocean. NIW packets were identified down to 1000 m, the maximum depth of the measurements. We estimated a NIW vertical energy flux of up to 2.5 mW m within the pycnocline, which represents about 10% of the maximum local wind power input. A nonnegligible fraction of the wind power input is hence potentially available for subsurface mixing. The impact of mixing by internal waves on the upper ocean heat budget was estimated from a fine-scale mixing parameterization. During the first leg of the cruise (characterized by little NIW activity), the average heating rate due to mixing was ~0.06°C month in the thermocline (23-24 kg m isopycnals). During the second leg, characterized by strong NIW energy in the thermocline and below, this heating rate increased to 0.42°C month, indicative of increased shear instability along near inertial wave energy pathways.
机译:风暴和旋风激发的近惯性内波(NIW)在推动热跃层和海洋内部的湍流混合中起重要作用。在印度洋西南部的热跃线山脊等地区,风暴引起的混合可能与气候有关,那里的浅热跃层和强烈的高频风活动增强了内部重力波引起的混合对海面温度的影响。 Cirene在2007年初进行的研究航行在热带气旋不断发展的影响下,收集了该区域的船载和系泊垂直剖面。在本文中,我们描述了NIW场以及这些波对上层海洋湍流混合的影响。 NIW数据包可识别到最大测量深度1000 m。我们估计比诺克林线内的NIW垂直能通量高达2.5 mW m,约占最大本地风能输入的10%。因此,不可忽略的一部分风能输入可用于地下混合。通过精细混合参数化估计了内部波浪混合对海洋高热量收支的影响。在巡游的第一阶段(以极少的NIW活性为特征),在温跃层(23至24 kg m的异冰片)中,由于混合而产生的平均加热速率为〜0.06°C。在第二回合期间,其特征是在热跃层及其以下具有强大的NIW能量,该加热速率增加至0.42°C月,这表明沿近惯性波能量路径的剪切不稳定性增加。

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