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Collaborative Research: Advection and Population Dynamics of Calanus Finmarchicus in Mesoscale Eddies in the Barents Sea: A Quantitative Approach Using the Biomass-Spectra Model

Collaborative Research: Advection and Population Dynamics of Calanus Finmarchicus in Mesoscale Eddies in the Barents Sea: A Quantitative Approach Using the Biomass-Spectra Model
合作研究:巴伦支海中尺度涡流中Finmarchicus的平流和种群动态:使用生物量光谱模型的定量方法
批准号:
9906575
负责人:
Meng Zhou
金额:
$25.1万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
1999
资助国家:
美国
项目状态:
已结题
起止时间:
1999-10-01 至 2001-10-31

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中文摘要
翻译
巴伦支海拥有丰富的重要商业物种,如毛鳞鱼、极地鳕鱼和鲱鱼。巴伦支海南部是鲱鱼的重要育苗区,鲱鱼在生命早期依赖浮游动物种群,同时也支持以浮游生物为食的极地鳕鱼和毛鳞鱼的种群。有人认为,作为北极水域的移居者,Calanus finmarchicus可能无法成功繁殖或维持其种群。挪威大西洋洋流和挪威海岸洋流向巴伦支海南部输送浮游动物是巴伦支海生态系统的重要机制。为了了解海洋浮游动物的时空分布和命运,有必要了解平流、迁徙行为和种群动态之间的相互作用,特别是在中尺度上。这种相互作用在极地地区最为深刻,因为内部的罗斯比半径约为101公里。在中尺度涡旋中获得三维平流和浮游生物原位种群动态速率的定量测量是一项艰巨的任务。传统的采样和实验方法无法解析中尺度的过程。声学仪器可以解决这些尺度,但不能为传统模型估计人口动态率提供必要的信息。光学仪器,如光学浮游生物计数器(OPC)或视频浮游生物记录仪(VPR),可以在高垂直和时间分辨率下提供浮游动物的大小分布信息,但尚未用于研究浮游动物的速率过程。基于尺寸结构描述浮游动物速率过程的理论和模型已经存在,但尚未得到广泛应用。本项目的PI采用新的高分辨率采样方法,结合新的种群动态数学理论和客观分析,综合了调查策略,在前所未有的规模上对平流、垂直迁移和浮游动物种群动态进行了定量研究。该项目将在挪威北部的tromsofflaket对这种理论和调查策略的综合进行关键测试。tromsofflaket是挪威大西洋海流(NAC)分叉处的一个重要生态系统。在tromsofflaket,这两个分支之间形成了一个永久的涡流。在生产季节,NAC向东北流动的分支似乎是将浮游动物生产陆架水向北输送到巴伦支海的重要机制。在tromsofflaket附近,一个物种(Calanus finmarchicus)在5月和6月占桡足类生物量的95%。在8月和9月发现了混合物种的组成。这为我们提供了一个机会,首先在一个单一优势物种的简单情况下测试我们的新方法,然后在一个更复杂的混合物种的一般情况下。这项研究的成功结果将有助于了解中尺度涡旋系统中浮游动物种群动态如何支持北极地区的高营养水平,并代表了生物海洋学的重要进展,为中尺度涡旋中浮游动物动态的高分辨率测量提供了可能,而不仅仅是分布。
英文摘要
9908079/9906757Ashijan/ZhouThe Barents Sea contains a fishery rich in commercially important species such as capelin, polar cod, and herring. The southern Barents Sea functions as a critical nursery area for the herring, which depend on zooplankton stocks during early life stages, and also supports populations of the planktivorous polar cod and capelin. It has been suggested that Calanus finmarchicus, as an expatriate in Arctic waters, may not reproduce successfully or be capable of sustaining its populations. The transport of zooplankton into the southern Barents Sea by the Norwegian Atlantic Current (NAC) and the Norwegian Coastal Current is an important mechanism to the Barents Sea ecosystem. To understand the spatiotemporal distribution and fate of zooplankton in the ocean, it is necessary to understand the interaction between advection, migration behavior, and population dynamics, especially at the mesoscale. This interaction is most profound in polar regions because the internal Rossby Radius is on the order of 101 km. Obtaining quantitative measurements of 3-dimensional advection and in situ population dynamics rates of plankton in a mesoscale eddy are daunting tasks. Traditional sampling and experimental methods cannot resolve processes at mesoscales. Acoustic instruments can resolve these scales, but cannot provide information necessary for traditional models to estimate population dynamics rates. Optical instruments, such as the Optical Plankton Counter (OPC) or Video Plankton Recorder (VPR), can provide information on the size-distribution of zooplankton at high vertical and temporal resolution but have not been used for the study of zooplankton rate processes. Theories and models describing rate processes in zooplankton based on size structure exist but have not been applied extensively.The PI's of this project have synthesized survey strategies using new high-resolution sampling methods with new mathematical theories of population dynamics and objective analysis, yielding a quantitative approach to the study of advection, vertical migration, and population dynamics of zooplankton on unprecedented scales. This project will undertake a critical test of this synthesis of theories and survey strategies in Tromsoflaket, northern Norway. Tromsoflaket is an important ecosystem located where the Norwegian Atlantic Current (NAC) bifurcates. A permanent eddy is formed in Tromsoflaket between these two branches. The northeast-flowing branch of the NAC appears to be an important mechanism for transporting zooplankton productive shelf water farther northwards into the Barents Sea during the productive season. In the vicinity of Tromsoflaket, a single species (Calanus finmarchicus) accounts for 95% of the copepod biomass in May and June. A composition of mixed species is found in August and September. This provides opportunities to test our new approach first in a simple case of a single dominant species, and then in a more complicated general case of mixed species.The successful outcome of this research could lead to an understanding of how zooplankton population dynamics in mesoscale eddy systems support high trophic levels in Arctic regions, and represent an important advance in biological oceanography, opening up the possibility of high-resolution measurements of zooplankton dynamics in mesoscale eddies, not just distributions.
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  • 项目类别:
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