解决格陵兰沿岸海洋二氧化碳吸收潜能的异质性问题

IF 3.7 3区 环境科学与生态学 Q2 ENVIRONMENTAL SCIENCES
Henry C. Henson, Mikael Sejr, Lorenz Meire, Lise Lotte Sørensen, Mie H. S. Winding, Johnna M. Holding
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引用次数: 0

摘要

海洋在减缓气候变化方面发挥着举足轻重的作用,每年排放的二氧化碳(CO2)约有 25% 被海洋所吸收。高纬度海洋,尤其是北极大陆架,因其寒冷、低盐和高产的生态系统而成为重要的二氧化碳汇。然而,人们对这些异质区域的了解仍然不足,阻碍了对其碳动态的准确评估。这项研究调查了格陵兰沿岸海洋在冰盖融化高峰期 pCO2 水平的变化,并估算了 6° 纬度范围内的海气交换率。格陵兰岛的东海岸和西海岸显示了具有独特控制因素的不同区域。不过,这两个海岸在夏季都是二氧化碳汇。pCO2 和海气交换的地理差异与格陵兰冰盖的淡水输出和这些生态系统的初级生产水平密切相关。二氧化碳的海气交换量从 0.23 到 -64 mmol m-2 天-1 不等。然而,我们发现,由于风积平均和气体交换公式的选择,通量估算面临很大的不确定性(高达 672%)。升尺度只会增加这种不确定性,导致格陵兰沿岸二氧化碳吸收量的估计值在-16 到-26 Tg C 年-1 之间(本研究、Dai 等人,2022 年,https://doi.org/10.1146/annurev-earth-032320-090746;Laruelle 等人,2014 年,https://doi.org/10.1002/2014gb004832)。要对海气 CO2 交换进行可靠的评估,就需要收集跨季节的数据,更需要对北极沿岸带气 体传输速度的估算进行改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Resolving Heterogeneity in CO2 Uptake Potential in the Greenland Coastal Ocean

Resolving Heterogeneity in CO2 Uptake Potential in the Greenland Coastal Ocean

The oceans play a pivotal role in mitigating climate change by sequestering approximately 25% of annually emitted carbon dioxide (CO2). High-latitude oceans, especially the Arctic continental shelves, emerge as crucial CO2 sinks due to their cold, low saline, and highly productive ecosystems. However, these heterogeneous regions remain inadequately understood, hindering accurate assessments of their carbon dynamics. This study investigates variation in pCO2 levels during peak ice sheet melt, in the Greenland coastal ocean and estimates rates of air-sea exchange across 6° of latitude. The East and West coast of Greenland displayed distinct regions with unique controlling factors. Though, both coasts represent CO2 sinks in summer. Geographical variation in pCO2 and air-sea exchange was linked intricately to freshwater export from the Greenland ice sheet and levels of primary production in these ecosystems. Air-sea exchange of CO2 ranged from 0.23 to −64 mmol m−2 day−1. However, we found that flux estimation faces substantial uncertainties (up to 672%) due to wind product averaging and gas exchange formula selection. Upscaling only heightens this uncertainty leading to wide ranging estimates of Greenland coastal CO2 uptake between −16 and −26 Tg C year−1 (This study, Dai et al., 2022, https://doi.org/10.1146/annurev-earth-032320-090746; Laruelle et al., 2014, https://doi.org/10.1002/2014gb004832). Obtaining a reliable assessment of air-sea CO2 exchange necessitates data collection across seasons, and, even more so, refinement of the gas transfer velocity estimations in the Arctic coastal zone.

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来源期刊
Journal of Geophysical Research: Biogeosciences
Journal of Geophysical Research: Biogeosciences Earth and Planetary Sciences-Paleontology
CiteScore
6.60
自引率
5.40%
发文量
242
期刊介绍: JGR-Biogeosciences focuses on biogeosciences of the Earth system in the past, present, and future and the extension of this research to planetary studies. The emerging field of biogeosciences spans the intellectual interface between biology and the geosciences and attempts to understand the functions of the Earth system across multiple spatial and temporal scales. Studies in biogeosciences may use multiple lines of evidence drawn from diverse fields to gain a holistic understanding of terrestrial, freshwater, and marine ecosystems and extreme environments. Specific topics within the scope of the section include process-based theoretical, experimental, and field studies of biogeochemistry, biogeophysics, atmosphere-, land-, and ocean-ecosystem interactions, biomineralization, life in extreme environments, astrobiology, microbial processes, geomicrobiology, and evolutionary geobiology
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