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Biogeochemical processes and ecosystem function in changing polar systems and their global impacts (BIOPOLE)

Biogeochemical processes and ecosystem function in changing polar systems and their global impacts (BIOPOLE)
极地系统变化中的生物地球化学过程和生态系统功能及其全球影响(BIOPOLE)
批准号:
NE/W004933/1
负责人:
Geraint Tarling
金额:
$1137.15万
依托单位:
依托单位国家:
英国
项目类别:
Research Grant
财政年份:
2022
资助国家:
英国
项目状态:
未结题
起止时间:
2022 至 --

项目摘要

项目成果

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中文摘要
翻译
气候变化正在威胁海洋为人类提供的两项关键生态系统服务:食物和大气碳的储存。极地地区对两者都有重大影响,但也正在经历最戏剧性和最迅速的变化。需要更好地了解影响营养物质在海洋中如何供应和生物处理的因素,以评估未来的风险,以量化地球系统和人类对这一支持全球生产力和渔业的基本全球功能的依赖。主要营养物质,如氮(N)和磷(P),并不均匀地分布在全球海洋中,而是在极地地区过剩,它们通过海洋环流从极地输出到较低纬度。生物物质是通过将N、P和碳(C)(以及其他次要元素)结合在一起而产生的,其比例在全球海洋的大多数地区大致相同。然而,在极地地区发现的比例有很大的不同。这是因为,首先,极地营养物质来自多种来源(冰川、海冰、河流和其他海洋)。其次,极地生态系统以不同的方式处理这些养分和碳。这导致一)从极地海洋输出并支持全球生产力的营养盈余,以及二)碳从大气转移到远离大气的深水中。紧迫的问题是,两极快速的气候变化正在改变营养物质的供应和生态系统的处理能力。这不仅威胁到人类赖以生存的海洋粮食储备,而且还威胁到海洋中碳的生物减少量,而海洋碳是全球气候的关键调节器。我们充分描述和预测这一威胁的能力受到地球系统模型(ESM)中极地生物地球化学和生态系统过程表现不充分的限制。Biopole代表并连接了英国许多主要的环境研究机构,这些机构将与国家和国际合作伙伴合作解决这一问题。我们提出了一个雄心勃勃的组合,将重点观察、新颖的分析和计算机模拟结合起来,从根本上提高我们测量、理解和预测极地地区的养分供应和碳储存将如何受到气候变化影响的能力。生物圈组织将进一步确定和量化对海洋生产力和渔业的更广泛的全球影响。我们将在两极采样和收集数据,以全面了解地球系统的这个问题。最新的实验和观测技术将描绘独特的极地群落的碳和营养过程。它将包括使用新的自主技术在更长的时间和更大的区域收集数据,而不是单独使用船只。全球建模将从产生的新认识中获得信息,并与其他建模方法一起使用,以便更好地量化极地海洋在维持全球海洋初级生产力和鱼类种群方面所发挥的作用,并预测未来趋势。两极的气候变化比其他任何地区都要快,导致海冰消失和冰川融化。显然,迫切需要了解这些变化对极地区域本身和更广泛的地球系统的全部生物、地球化学和生态系统层面的影响。随着冰川的消退,暴露出来的脆弱的、具有全球意义的生态系统需要国际保护,这取决于通过协调的极地科学建立强大的科学证据体系。海洋生产力产生的海洋直接产出价值为6.9万亿美元,而海洋吸收加元的能力价值为4.3万亿美元。气候变化将如何影响这些角色的不确定性仍然很大,需要进行科学和经济评估,这对科学和社会都是一个紧迫的挑战。
英文摘要
Climate change is threatening two key ecosystem services provided by the ocean for humankind: food and storage of atmospheric carbon. The polar regions are major influences on both but are also experiencing the most dramatic and rapid changes. A better understanding of the factors affecting how nutrients are supplied and biologically processed in the ocean is needed to assess the future risk to quantify the dependence of the Earth system, and humanity, on this essential global function that supports global productivity and fisheries. Key nutrients, such as nitrogen (N) and phosphorus (P), are not evenly distributed across the global ocean but are in excess in the polar regions from where they are exported to lower latitudes by ocean circulation. Living matter is produced through combining N, P and carbon (C) (and other minor elements) in a ratio that is more or less the same in most regions of the global ocean. However, the ratios found in the polar regions are substantially different. This is because, firstly, polar nutrients come from a diversity of sources (glaciers, sea-ice, rivers and other seas). Secondly, the polar ecosystem processes these nutrients and carbon in distinct ways. This results in i) a nutrient surplus, which is exported from the polar oceans and supports productivity globally, and ii) the transport of carbon from the atmosphere into deep waters distant from the atmosphere. The pressing issue is that rapid climatic change at the poles is changing both the supply of nutrients and the processing capacity of their ecosystems. This threatens not only the marine food stocks on which humanity depends but also the biological drawdown of C in the oceans, a critical regulator of global climate. Our ability to fully characterise and predict this threat is limited by inadequate representation of polar biogeochemical and ecosystem processes in Earth System Models (ESMs). BIOPOLE represents and links together many of the major environmental research institutes in the UK, who will work with national and international partners to address this problem. We propose an ambitious combination of focussed observations, novel analyses and computer simulations to radically improve our ability to measure, understand and predict how nutrient supply and C storage in the polar regions will be affected by climate change. BIOPOLE will further identify and quantify the wider global impacts to ocean productivity and fisheries. We will sample and collect data at both poles to take a full Earth system perspective of this problem. The latest experimental and observational techniques will delineate C and nutrient processing by the unique polar communities. It will include the use of novel autonomous technologies to collect data over longer periods and greater areas than can be achieved by ships alone. Global modelling will be informed by the new understanding generated and used alongside other modelling approaches to better quantify the role that polar oceans play in sustaining global oceanic primary productivity and fish stocks, and to predict future trends. Climate change is proceeding faster at the poles than any other region, resulting in sea-ice loss and glacial melting. There is a clear urgency in understanding the full biogeochemical and ecosystem level implications of these changes for the polar regions themselves and for the wider Earth system. As ice retreats, the fragile and globally significant ecosystems that are exposed require international protection, which depends on building a strong body of scientific evidence through co-ordinated polar science. Direct outputs from the ocean resulting from ocean productivity have been valued at $6.9trn, while that of the capacity of the oceans to absorb C is $4.3trn. The uncertainty in how climate change will impact these roles remains large, requiring both scientific and economic evaluation, and presenting a pressing challenge for both science and society.
期刊论文(10)
专著(0)
科研奖励(0)
会议论文
Visual predation risk and spatial distributions of large Arctic copepods along gradients of sea ice and bottom depth
北极大型桡足类视觉捕食风险和沿海冰和海底深度梯度的空间分布
DOI: 10.1002/lno.12354
发表时间: 2023
期刊: Limnology and Oceanography
影响因子: 4.5
作者: [Langbehn T]
通讯作者: Langbehn T
DOI: 10.1038/s41467-022-31152-3
发表时间: 2022-06-14
期刊: NATURE COMMUNICATIONS
影响因子: 16.6
作者: [Meredith, Michael P.]
通讯作者: Meredith, Michael P.
Carbon and nutrient cycling in Antarctic landfast sea ice from winter to summer
从冬季到夏季南极陆地海冰的碳和营养物循环
DOI: 10.1002/lno.12260
发表时间: 2022
期刊: Limnology and Oceanography
影响因子: 4.5
作者: [Jones E]
通讯作者: Jones E
DOI: 10.1126/sciadv.add0720
发表时间: 2022-11-25
期刊: Science advances
影响因子: 13.6
作者: []
通讯作者:
共 9 条
    Chronobiology of changing Arctic Sea Ecosystems (CHASE)
    • 批准号:
      NE/R012687/1
    • 项目类别:
      Research Grant
    • 资助金额:
      $12.53万
    • 财政年份:
      2018
    • 负责人:
      Geraint Tarling
    • 依托单位:
    Mechanistic understanding of the role of diatoms in the success of the Arctic complex and implications for a warmer Arctic
    • 批准号:
      NE/P006213/1
    • 项目类别:
      Research Grant
    • 资助金额:
      $43.36万
    • 财政年份:
      2017
    • 负责人:
      Geraint Tarling
    • 依托单位:
    Controls over Ocean Mesopelagic Interior Carbon Storage (COMICS)
    • 批准号:
      NE/M020762/1
    • 项目类别:
      Research Grant
    • 资助金额:
      $52.23万
    • 财政年份:
      2017
    • 负责人:
      Geraint Tarling
    • 依托单位:
    SeaDNA - Assessing marine biodiversity and structure using environmental DNA: from groundtruthing to food web structure and stability
    • 批准号:
      NE/N00616X/1
    • 项目类别:
      Research Grant
    • 资助金额:
      $15.74万
    • 财政年份:
      2015
    • 负责人:
      Geraint Tarling
    • 依托单位:
    国内基金
    海外基金
    Submesoscale Processes Associated with Oceanic Eddies
    • 批准号:
      --
    • 项目类别:
      --
    • 资助金额:
      160万元
    • 批准年份:
      2022
    • 负责人:
      董昌明
    • 依托单位: