Collaborative Research: Oceanic N2 Fixation and Global Climate
Collaborative Research: Oceanic N2 Fixation and Global Climate
批准号:
9981398
负责人:
David Siegel
金额:
$56.0万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
2000
资助国家:
美国
项目状态:
已结题
起止时间:
2000-01-01 至 2006-12-31
中文摘要
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英文摘要
BIOCOMPLEXITY: OCEANIC N2 FIXATION AND GLOBAL CLIMATE Oceanic nitrogen (N2) fixation has recently been identified as a significant part of theoceanic nitrogen (N) cycle and may directly influence the sequestration of atmospheric CO2 inthe oceans by providing a new source of N to the upper water column. The prokaryoticmicroorganisms that convert N2 gas to reactive N are an unique subcomponent of planktonicecosystems and exhibit a variety of complex dynamics including the formation of microbialconsortia and symbioses and, at times, massive blooms. Accumulating evidence indicates thatiron (Fe) availability may be a key controlling factor for these planktonic marine diazotrophs.The primary pathway of Fe delivery to the upper oceans is through dust deposition.N2 fixers may therefore be directly involved in global feedbacks with the climate systemand these feedbacks may also exhibit complex dynamics on many different time-scales. The hypothesized feedback mechanisms will have the following component parts: The rate of N2fixation in the world's oceans can have an impact on the concentration of the greenhouse gas,carbon dioxide (CO2), in the atmosphere on time-scales of decades (variability in surfacebiogeochemistry) to millennia (changes in the total NO3 - stock from the balance of N2 fixationand denitrification). CO2 concentrations in the atmosphere influence the climate. The climatesystem, in turn, can influence the rate of N2 fixation in the oceans by controlling the supply of Feon dust and by influencing the stratification of the upper ocean. Humans also have a direct rolein the current manifestation of this feedback cycle by their influence on dust production, throughagriculture at the margins of deserts, and by our own production of CO2 into the atmosphere.The circular nature of these influences can lead to a feedback system, particularly on longer time-scales. This collaborative and interdisciplinary group of investigators, led by Dr. Anthony Michaels, will study each of the components of this system and then to model the hypothesized feedback processes. Because of the interaction of the various parts of this system, keyed around the unique behavior and biogeochemistry of the prokaryotic microorganisms that can fix N2, this feedback loop should exhibit complex behaviors on a variety of time-scales. In this research, we will conduct a targeted series of experiments and field observations to understand and parameterize each of the pieces of this global process including the direct control of marine N2 fixation by dust deposition. This understanding will then feed a modeling process that examines the complex dynamics of this system on time-scales of years to millennia. The modeling process will be evaluated by comparison with data on the time-dependent behavior ofocean biogeochemistry
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Chromophoric DOM: An Ignored Photoactive Tracer of Geochemical Process
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BE/CNH: Disparate Scales of Process and Nearshore Fishery Management
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依托单位:
Characterization of the Undersea Photoenvironment at the U.S. JGOFS Bermuda Atlantic Time-Series
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依托单位:
国内基金
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