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Interactions between climate and the marine nitrogen cycle on glacial-interglacial timescales.

机译:在冰川间时间尺度上,气候与海洋氮循环之间的相互作用。

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摘要

Nitrogen is a principal component of living organisms and comprises the majority of the atmosphere, yet the scarcity of biologically reactive nitrogen in the ocean limits growth and appears to have varied with past changes in physical climate. This thesis takes a multi-faceted approach, including fine-scale sediment analysis, modern field observations and global numerical modeling, to contribute an integrated view of the marine nitrogen cycle and its climatic sensitivity.; Nitrogen bound in diatom frustules, extracted from laminated sediments of the Guaymas Basin, has greater seasonal delta15N variability than corresponding bulk sediment. Downslope transport of frustules from the shelf contributes 15N-depleted nitrogen, while pelagic diatom frustules display great sensitivity to seasonal growing conditions. Bulk sedimentary delta 15N represents a reliable integrated monitor of the local nitrogen substrate.; Records of bulk sedimentary delta15N from the subarctic Pacific reflect the tripartite imprints of diagenesis, variable nitrate utilization and changes in delta15N-nitrate. Modern subsurface delta 15N-nitrate is homogenous across the open subarctic Pacific. Diagenesis introduces 15N-enrichments at core tops and there is a gradual decrease of delta15N with burial. The Gulf of Alaska record does not sample HNLC waters, but records changes in delta15N-nitrate and diagenesis. This is used to correct for regional delta15N-nitrate variability, revealing rapid increases in nitrate utilization, likely due to Fe fertilization, in the western subarctic Pacific during glacial periods. The delta15N-nitrate record suggests denitrification may have occurred in the deep ocean during the last glacial maximum, and almost certainly in the upper water column of the deglacial subarctic Pacific.; A global compilation of delta15N records evokes co-ordinated changes in denitrification throughout the global thermocline, implying large increases in aggregate denitrification rate, matched by changes in N 2 fixation, under warming conditions. A global, physically-driven modulation of subsurface oxygen concentrations is proposed as the primary relevant forcing on glacial-interglacial timescales.; Simple schemes for denitrification and N2 fixation, based on widely accepted ecological principles, are quantified and embedded in a General Circulation Model of intermediate complexity. The model highlights the competition between diazotrophs and other phytoplankton for phosphorus as a key element of the marine biosphere. The model confirms a pronounced sensitivity of denitrification rates to the physical climate state, with more rapid rates of nitrogen cycling and expanded nitrogen limitation under warmer climates.
机译:氮是生命有机体的主要成分,占大气的大部分,但是海洋中生物活性氮的稀缺限制了其生长,并且似乎随着过去物理气候的变化而变化。本文采用了多方面的方法,包括精细的沉积物分析,现代的野外观测和全球数值模拟,以综合了解海洋氮循环及其气候敏感性。从瓜伊马斯盆地的层状沉积物中提取的硅藻壳中结合的氮比相应的大量沉积物具有更大的季节性δ15N变化性。从架子上向下的f壳向下运输有助于减少15 N的氮,而上层硅藻壳对季节性生长条件显示出极大的敏感性。堆积沉积三角洲15N代表了局部氮底物的可靠集成监测器。来自北极亚太平洋的大量沉积三角洲15N的记录反映了成岩作用,可变的硝酸盐利用率和硝酸δ15N的变化的三方特征。现代地下亚硝酸盐δ15N在整个北极开放太平洋中是均匀的。成岩作用在核心顶部引入了15N富集,随着埋葬,delta15N逐渐减少。阿拉斯加湾记录未对HNLC水取样,但记录了δ15N硝酸盐和成岩作用的变化。这用于校正区域δ15N-硝酸盐的变异性,揭示了冰期西部北极西北太平洋硝酸盐利用的快速增加(可能是由于铁的施肥)。 δ15N-硝酸盐记录表明,在最后一次冰川最大时期,深海中可能发生了反硝化作用,几乎可以肯定的是,在北极冰川下太平洋的上水柱中发生了反硝化作用。对delta15N记录的全球汇编引发了整个全球温跃层反硝化的协调变化,这意味着在变暖条件下,总反硝化率大幅提高,同时N 2固着率也随之变化。提出了一种整体的,物理驱动的地下氧气浓度的调节方法,作为对冰川间时间尺度的主要相关强迫。根据广泛接受的生态原理,对简单的脱氮和固氮方案进行量化,并将其嵌入到中等复杂程度的通用循环模型中。该模型强调了重氮营养菌与其他浮游植物之间的竞争,即磷是海洋生物圈的关键元素。该模型证实了反硝化速率对物理气候状态的显着敏感性,在温暖的气候下,氮的循环速率更快,氮限制增加。

著录项

  • 作者

    Galbraith, Eric Douglas.;

  • 作者单位

    The University of British Columbia (Canada).;

  • 授予单位 The University of British Columbia (Canada).;
  • 学科 Biogeochemistry.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 218 p.
  • 总页数 218
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 生物地球化学、气体地球化学 ;
  • 关键词

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