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Linking mixing processes and climate variability to the heat content distribution of the Eastern Mediterranean abyss

机译:将混合过程和气候变异性与东地中海深渊的热量含量分布联系起来

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摘要

The heat contained in the ocean (OHC) dominates the Earth’s energy budget and hence represents a fundamental parameter for understanding climate changes. However, paucity of observational data hampers our knowledge on OHC variability, particularly in abyssal areas. Here, we analyze water characteristics, observed during the last three decades in the abyssal Ionian Sea (Eastern Mediterranean), where two competing convective sources of bottom water exist. We find a heat storage of ~1.6 W/m2 – twice that assessed globally in the same period – exceptionally well-spread throughout the local abyssal layers. Such an OHC accumulation stems from progressive warming and salinification of the Eastern Mediterranean, producing warmer near-bottom waters. We analyze a new process that involves convectively-generated waters reaching the abyss as well as the triggering of a diapycnal mixing due to rough bathymetry, which brings to a warming and thickening of the bottom layer, also influencing water-column potential vorticity. This may affect the prevailing circulation, altering the local cyclonic/anticyclonic long-term variability and hence precondition future water-masses formation and the redistribution of heat along the entire water-column.
机译:海洋中所含的热量(OHC)支配着地球的能源预算,因此代表了理解气候变化的基本参数。但是,缺乏观测资料妨碍了我们对OHC变异性的了解,尤其是在深海地区。在这里,我们分析了近三十年来在深海爱奥尼亚海(地中海东部)中观察到的水特征,那里存在着两个竞争的对流底水。我们发现,储热量约为1.6 W / m 2 ,是同期全球总储能量的两倍,分布在局部深海层中。这种OHC积累源自地中海东部逐渐变暖和盐碱化,产生了更温暖的近底部水域。我们分析了一个新的过程,其中涉及到对流生成的水到达深渊,以及由于粗略的测深法引发的辉岩混合,这导致底层的变暖和增厚,也影响了水柱的潜在涡度。这可能会影响盛行的环流,改变局部气旋/反气旋的长期变化,从而前置未来水团的形成和整个水柱中热量的重新分配。

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