Giant iceberg meltwater increases upper-ocean stratification and vertical mixing

IF 16.1 1区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY Nature Geoscience Pub Date : 2025-04-04 DOI:10.1038/s41561-025-01659-7
Natasha S. Lucas, J. Alexander Brearley, Katharine R. Hendry, Theo Spira, Anne Braakmann-Folgmann, E. Povl Abrahamsen, Michael P. Meredith, Geraint A. Tarling
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Abstract

Ice-sheet mass loss is one of the clearest manifestations of climate change, with Antarctica discharging mass into the ocean via melting or through calving. The latter produces icebergs that can modify ocean water properties, often at great distances from source. This affects upper-ocean physics and primary productivity, with implications for atmospheric carbon drawdown. A detailed understanding of iceberg modification of ocean waters has hitherto been hindered by a lack of proximal measurements. Here unique measurements of a giant iceberg from an underwater glider enable quantification of meltwater effects on the physical and biological processes in the upper layers of the Southern Ocean, a region disproportionately important for global heat and carbon sequestration. Iceberg basal melting erodes seasonally produced winter water layer stratification, normally forming a strong potential energy barrier to vertical exchange of surface and deep waters, while freshwater run-off increases and shoals near-surface stratification. Nutrient-rich deeper waters, incorporating meltwater loaded with terrigenous material, are ventilated to below this stratification maxima, providing a potential mechanism for alleviating critical phytoplankton-limiting components. Regional historical hydrographic data demonstrate similar stratification changes during the passage of another large iceberg, suggesting that they may be an important pathway of aseasonal winter water modification. Observations from an underwater glider show that meltwater from giant icebergs increases ocean stratification near the surface and mixing below, potentially impacting biological productivity.

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巨大的冰山融水增加了上层海洋的分层和垂直混合
冰盖的质量损失是气候变化最明显的表现之一,南极洲通过融化或崩解将质量排放到海洋中。后者产生的冰山可以改变海水的性质,通常在离源头很远的地方。这影响了上层海洋的物理和初级生产力,并对大气中的碳减少产生影响。迄今为止,由于缺乏近端测量,对海洋水域的冰山变化的详细了解受到阻碍。在这里,水下滑翔机对一座巨大冰山的独特测量,可以量化融水对南大洋上层物理和生物过程的影响,南大洋是一个对全球热量和碳封存尤为重要的地区。冰山基底融化侵蚀季节性地产生冬季水层分层,通常形成表层和深层垂直交换的强大势能屏障,而淡水径流量增加并浅滩近地表分层。营养丰富的较深水域,包括装载陆源物质的融水,被通风到这一层积最大值以下,为减轻关键的浮游植物限制成分提供了一种潜在的机制。区域历史水文资料显示,在另一个大冰山通过期间,类似的分层变化,表明它们可能是季节性冬季水变化的重要途径。
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来源期刊
Nature Geoscience
Nature Geoscience 地学-地球科学综合
CiteScore
26.70
自引率
1.60%
发文量
187
审稿时长
3.3 months
期刊介绍: Nature Geoscience is a monthly interdisciplinary journal that gathers top-tier research spanning Earth Sciences and related fields. The journal covers all geoscience disciplines, including fieldwork, modeling, and theoretical studies. Topics include atmospheric science, biogeochemistry, climate science, geobiology, geochemistry, geoinformatics, remote sensing, geology, geomagnetism, paleomagnetism, geomorphology, geophysics, glaciology, hydrology, limnology, mineralogy, oceanography, paleontology, paleoclimatology, paleoceanography, petrology, planetary science, seismology, space physics, tectonics, and volcanology. Nature Geoscience upholds its commitment to publishing significant, high-quality Earth Sciences research through fair, rapid, and rigorous peer review, overseen by a team of full-time professional editors.
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