南大洋太平洋海域球岩藻生长的环境驱动因素

IF 5.4 2区 地球科学 Q1 ENVIRONMENTAL SCIENCES Global Biogeochemical Cycles Pub Date : 2023-11-09 DOI:10.1029/2023GB007751
H. Oliver, D. J. McGillicuddy Jr., K. M. Krumhardt, M. C. Long, N. R. Bates, B. C. Bowler, D. T. Drapeau, W. M. Balch
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引用次数: 0

摘要

大方解石带(Great Calcite Belt, GCB)是一条横跨亚南极南大洋的高浓度悬浮颗粒无机碳(PIC)带,在全球碳循环中起着重要作用。在遥远的太平洋板块,控制支撑这种高PIC的颗石藻生长的关键限制因素尚未得到很好的表征,太平洋板块的PIC最低,但面积最大。在这里,我们展示了2021年1月至2月沿150°W发生球石藻华的现场物理和生物地球化学测量结果。在这两个月里,亚南极区(SAZ)的PIC升高,那里的硝酸盐含量为1 μM, 1月和2月的温度分别为~ 13°C和~ 14°C,与之前与最佳球石藻生长潜力相关的条件一致。最高的PIC与相对较窄的温度范围有关,职业之间的温度范围增加了约1°C。在占领期间,较新鲜的水团被输送到150°W子午线,根据高度信息的拉格朗日回溯估计表明,大部分水可能来自SAZ内的东南部。应用1月和2月的球石藻生长模型的观测结果,我们表明温度升高~ 1.7°C可以解释职业之间PIC的上升。
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Environmental Drivers of Coccolithophore Growth in the Pacific Sector of the Southern Ocean

The Great Calcite Belt (GCB) is a band of high concentrations of suspended particulate inorganic carbon (PIC) spanning the subantarctic Southern Ocean and plays an important role in the global carbon cycle. The key limiting factors controlling coccolithophore growth supporting this high PIC have not yet been well-characterized in the remote Pacific sector, the lowest PIC but largest area of the GCB. Here, we present in situ physical and biogeochemical measurements along 150°W from January to February 2021, where a coccolithophore bloom occurred. In both months, PIC was elevated in the Subantarctic Zone (SAZ), where nitrate was >1 μM and temperatures were ∼13°C in January and ∼14°C in February, consistent with conditions previously associated with optimal coccolithophore growth potential. The highest PIC was associated with a relatively narrow temperature range that increased about 1°C between occupations. A fresher water mass had been transported to the 150°W meridian between occupations, and altimetry-informed Lagrangian backtracking estimates show that most of this water was likely transported from the southeast within the SAZ. Applying the observations in a coccolithophore growth model for both January and February, we show that the ∼1.7°C increase in temperature can explain the rise in PIC between occupations.

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来源期刊
Global Biogeochemical Cycles
Global Biogeochemical Cycles 环境科学-地球科学综合
CiteScore
8.90
自引率
7.70%
发文量
141
审稿时长
8-16 weeks
期刊介绍: Global Biogeochemical Cycles (GBC) features research on regional to global biogeochemical interactions, as well as more local studies that demonstrate fundamental implications for biogeochemical processing at regional or global scales. Published papers draw on a wide array of methods and knowledge and extend in time from the deep geologic past to recent historical and potential future interactions. This broad scope includes studies that elucidate human activities as interactive components of biogeochemical cycles and physical Earth Systems including climate. Authors are required to make their work accessible to a broad interdisciplinary range of scientists.
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