From winter to late summer in the northwestern Barents Sea shelf: Impacts of seasonal progression of sea ice and upper ocean on nutrient and phytoplankton dynamics

IF 3.8 3区 地球科学 Q1 OCEANOGRAPHY
Zoe Koenig , Morven Muilwijk , Håkon Sandven , Øyvind Lundesgaard , Philipp Assmy , Sigrid Lind , Karen M. Assmann , Melissa Chierici , Agneta Fransson , Sebastian Gerland , Elizabeth Jones , Angelika H.H. Renner , Mats A. Granskog
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Abstract

Strong seasonality is a key feature of high-latitude systems like the Barents Sea. While the interannual variability and long-term changes of the Barents Sea are well-documented, the seasonal progression of the physical and biological systems is less known, mainly due to poor accessibility of the seasonally ice-covered area in winter and spring. Here, we use an extensive set of physical and biological in situ observations from four scientific expeditions covering the seasonal progression from late winter to late summer 2021 in the northwestern Barents Sea, from fully ice-covered to ice-free conditions. We found that sea ice meltwater and the timing of ice-free conditions in summer shape the environment, controlling heat accumulation, light and nutrient availability, and biological activity vertically, seasonally, and meridionally. In March and May, the ocean north of the Polar Front was ice-covered and featured a deep mixed layer. Chlorophyll-a concentrations increased strongly from March to May along with greater euphotic depth, indicating the beginning of the spring bloom despite the absence of surface layer stratification. By July and in September, sea ice meltwater created a shallow low-density surface layer that strengthened stratification. In open water, chlorophyll-a maxima were found at the base of this layer as surface nutrients were depleted, while in the presence of ice, maxima were closer to the surface. Solar heating and the thickness of the surface layer increased with the number of ice-free days. The summer data showed a prime example of an Arctic-like space-for-time seasonal variability in the key physical and biological patterns, with the summer situation progressing northwards following sea ice retreat. The amount of sea ice melt (local or imported) has a strong control on the conditions in the northwestern Barents Sea, and the conditions in late 2021 resembled pre-2010 Arctic-like conditions with high freshwater content and lower ocean heat content.

巴伦支海西北部大陆架从冬季到夏末的变化:海冰和上层海洋的季节性变化对营养物质和浮游植物动态的影响
强烈的季节性是巴伦支海等高纬度系统的一个主要特征。虽然巴伦支海的年际变化和长期变化已被充分记录,但物理和生物系统的季节变化却鲜为人知,这主要是由于冬春季节冰覆盖区域的可进入性差。在此,我们使用了四次科学考察所获得的大量物理和生物原位观测数据,这些数据涵盖了巴伦支海西北部从 2021 年冬末到夏末从完全冰覆盖到无冰状态的季节性变化。我们发现,海冰融水和夏季无冰状态的时间塑造了环境,控制着热量积累、光照和养分供应,以及垂直、季节和经向的生物活动。3 月和 5 月,极地前线以北的海洋被冰雪覆盖,形成了一个深层混合层。从 3 月到 5 月,叶绿素-a 的浓度随着透明度的增加而剧增,这表明尽管没有表层分层,但春季水华已经开始。到 7 月和 9 月,海冰融水形成了浅层低密度表层,加强了分层。在开阔水域,由于表层营养物质消耗殆尽,叶绿素-a 的最大值出现在表层的底部,而在有冰的水域,叶绿素-a 的最大值更接近表层。太阳加热和表层厚度随无冰天数的增加而增加。夏季数据显示了关键物理和生物模式中类似北极的时空季节变化的典型例子,夏季情况随着海冰消退而向北发展。海冰融化量(本地或输入)对巴伦支海西北部的状况有很大的控制作用,2021 年底的状况类似于 2010 年之前的北极状况,淡水含量高,海洋热含量低。
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来源期刊
Progress in Oceanography
Progress in Oceanography 地学-海洋学
CiteScore
7.20
自引率
4.90%
发文量
138
审稿时长
3 months
期刊介绍: Progress in Oceanography publishes the longer, more comprehensive papers that most oceanographers feel are necessary, on occasion, to do justice to their work. Contributions are generally either a review of an aspect of oceanography or a treatise on an expanding oceanographic subject. The articles cover the entire spectrum of disciplines within the science of oceanography. Occasionally volumes are devoted to collections of papers and conference proceedings of exceptional interest. Essential reading for all oceanographers.
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