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Collaborative Research: High resolution glider observations enable reassessment of export production in the oligotrophic Sargasso Sea

Collaborative Research: High resolution glider observations enable reassessment of export production in the oligotrophic Sargasso Sea
合作研究:高分辨率滑翔机观测能够重新评估寡营养马尾藻海的出口产量
批准号:
1851224
负责人:
Damian Grundle
金额:
$67.77万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2019
资助国家:
美国
项目状态:
已结题
起止时间:
2019-04-01 至 2023-03-31

项目摘要

项目成果

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中文摘要
翻译
几十年来,在百慕大大西洋时间序列研究(BATS)等地点进行的观测和测量对于基本理解海洋的物理、化学和生物学之间的联系非常重要。然而,在BATS基地,尽管有悠久的观测历史,一个谜仍然存在:何时以及如何将足够的氮输送到地表水以支持观察到的生物生产?研究人员将在自主水下滑翔机上使用氧气、硝酸盐和微湍流传感器,在BATS基地连续取样20个月,努力解开这个谜团。滑翔机使测量过程的尺度成为可能,这些尺度无法通过每月或每两周从船上采样来捕获。然而,BATS项目的定期采样仍然是该项目必不可少的,它为滑翔机传感器的校准和验证提供了机会,并为滑翔机的部署和回收提供了船舶支持。该项目还将利用现有的来自bio - scope项目的私人资金,该项目是BATS的一个多机构微生物海洋生物地球化学倡议,将为滑翔机的运行提供部分支持。调查人员每年将招募并建议至少两名NSF本科生研究经验(REU)学生,并将项目主题和数据纳入各自机构的教育计划中。该项目将应用新技术来解决几个因素,这些因素被认为长期低估了马尾藻海的硝酸盐输送和颗粒有机碳(POC)出口。基于高分辨率滑翔机的观测数据将用于在一个跨越年周期和两个连续寡营养期的时期内,通过氧质量平衡估算年净群落产量(ANCP),通过硝酸盐质量平衡估算新产量(NP)。微观结构测量将提供急需的垂直扩散率剖面,以准确地约束氧和硝酸盐的通量及其在年循环中的变化。氧/氩比测量将被用作生物介导的氧变化的独立估计,并作为滑翔机测量的氧浓度变化率的约束。通过流式细胞术评估浮游植物特性将用于校准滑翔机的光学传感器以适应原位生物特性,以便在滑翔机的高时间分辨率下识别浮游植物群落结构和生物量的变化,并与同时测量的NCP, NP和物理水柱结构相关,包括在光带上下。POC输出将从更深层的反向散射库存中推断出来。观测结果的总和将能够评估生物碳泵强度的三个独立测量代理之间的关系,以及系统在年周期中如何响应环境强迫,特别关注分层寡营养月份。该奖项反映了美国国家科学基金会的法定使命,并通过使用基金会的知识价值和更广泛的影响审查标准进行评估,被认为值得支持。
英文摘要
Observations and measurements over several decades at locations like the Bermuda Atlantic Time-series Study (BATS) site have been important to fundamental understanding of the links between the physics, chemistry, and biology of the ocean. At the BATS site however, despite the long history of observations, a mystery remains: When and how is enough nitrogen delivered to surface waters to support the biological production that is observed? The investigators will use oxygen, nitrate, and micro-turbulence sensors on autonomous underwater gliders to sample continuously for twenty months at the BATS site in an effort to resolve this mystery. Gliders make it possible to measure processes at scales that can't be captured by monthly or biweekly sampling from a ship. Regular sampling by the BATS program will still be essential to the project, however, by providing opportunities for calibration and validation of the glider sensors as well as ship support for glider deployments and recoveries. The project will also leverage existing private funding from the BIOS-SCOPE project, a multi-institutional microbial marine biogeochemistry initiative at BATS, that will provide partial support for glider operations. The investigators will recruit and advise at least two NSF Research Experience for Undergraduates (REU) students each year, and will incorporate project themes and data into educational programs at their respective institutions. This project will apply new technologies to address several factors believed to perpetuate significant underestimates of nitrate delivery and particulate organic carbon (POC) exports in the Sargasso Sea. High-resolution glider-based observations will be used to estimate annual net community production (ANCP) through oxygen mass balance, and new production (NP) through nitrate mass balance, over a period spanning an annual cycle and two consecutive oligotrophic periods. Microstructure measurements will provide much-needed profiles of vertical diffusivity to accurately constrain fluxes of oxygen and nitrate and their variability over the annual cycle. Oxygen/argon ratio measurements will be used as independent estimates of biologically mediated oxygen changes and as constraints on glider-measured rates of oxygen concentration change. Assessments of phytoplankton characteristics by flow cytometry will be used to calibrate the gliders' optical sensors to in situ biological characteristics, so that variability in phytoplankton community structure and biomass can be discerned at the gliders' high temporal resolution and related to simultaneously measured NCP, NP, and physical water column structure, both above and below the euphotic zone. POC exports will be inferred from backscatter inventories in the deeper layers. The sum of observations will enable assessments of relationships among three independently measured proxies for the strength of the biological carbon pump and how the system responds to environmental forcing over the annual cycle, with particular focus on the stratified oligotrophic months.This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.
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会议论文
Collaborative Research: Nitrous oxide reduction in oxygen minimum zones: an understudied but critical loss term in ocean greenhouse gas cycling
  • 批准号:
    2341290
  • 项目类别:
    Standard Grant
  • 资助金额:
    $54.58万
  • 财政年份:
    2023
  • 负责人:
    Damian Grundle
  • 依托单位:
Collaborative Research: Nitrous oxide reduction in oxygen minimum zones: an understudied but critical loss term in ocean greenhouse gas cycling
国内基金
海外基金
Research on Quantum Field Theory without a Lagrangian Description
  • 批准号:
    24ZR1403900
  • 项目类别:
    省市级项目
  • 资助金额:
    --
  • 批准年份:
    2024
  • 负责人:
    SATOSHI NAWATA
  • 依托单位:
Cell Research
Cell Research
Cell Research (细胞研究)