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Determination of Regional- and Global-Scale New Production, Remineralization Rates and DOC Fluxes from the Annual Cycle of Oxygen in the Upper Ocean

Determination of Regional- and Global-Scale New Production, Remineralization Rates and DOC Fluxes from the Annual Cycle of Oxygen in the Upper Ocean
根据上层海洋氧气的年度循环确定区域和全球范围的新产量、再矿化率和 DOC 通量
批准号:
9711937
负责人:
Raymond Najjar
金额:
$19.24万
依托单位国家:
美国
项目类别:
Continuing Grant
财政年份:
1997
资助国家:
美国
项目状态:
已结题
起止时间:
1997-10-01 至 2001-09-30

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中文摘要
翻译
Najjar(OCE-9711937) Najjar 9711937 海洋科学家因无法直接测量许多重要的生物地球化学参数,如新产量和矿化度,特别是在区域和全球范围内,而受到阻碍。 PI,Najjar及其同事最近对国家海洋数据中心(NODC)存档的现有氧气数据进行的分析表明,在全球范围内可以解决氧气的重要年度循环。 在海洋中,没有其他化学物种像氧气一样被广泛测量,氧气的循环可以产生关于有机碳循环的重要信息。 在该提案中,Najjar建议使用气候学氧数据,结合三维海洋生物地球化学模型,量化区域和全球范围内的新产量,矿化和DOC循环的估计。 将对改进的地球化学模型进行测试,并计划对NODC氧气数据集进行更新和修订。 这种方法还将包括对氧场和由此产生的通量的误差分析。 这一提议的结果将大大促进我们对大尺度海洋生物地球化学过程的了解,从而促进我们对这些过程与全球变化的关系的了解。 ***
英文摘要
Najjar (OCE-9711937) Najjar 9711937 Marine scientists are hampered by their ability to directly measure many important biogeochemical parameters such as new production and remineralization, particularly on regional and global scales. Recent analyses by the PI, Najjar, and colleagues of existing oxygen data archived at the National Oceanographic Data Center (NODC) show that there are significant annual cycles of oxygen that can be resolved on a global scale. No other chemical species has been measured as extensively in the oceans as oxygen has, and the cycling of oxygen can yield significant information about organic carbon cycling. In this proposal, Najjar proposes to use the climatological oxygen data, combined with a three dimensional marine biogeochemical model, to quantify regional and global scale estimates of new production, remineralization and DOC cycling. Improved biogeochemical models will be tested and updating and revisions to the NODC oxygen data set are planned. This approach will also include an error analysis of the oxygen field and resulting fluxes. The results from this proposal will represent a significant advance in our understanding of marine biogeochemical processes on large scales and thus advance our understanding of how these processes relate to global change. ***
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会议论文
Collaborative Research: How are estuarine carbon and alkalinity dynamics influenced by macrobiota?
Collaborative Research: Estuarine metabolism and gas exchange determined from dissolved oxygen time series: method development, field evaluation, and application to historical data
REU Site: Interdisciplinary Climate Science Research at The Pennsylvania State University
REU Site: Climate Science Research at The Pennsylvania State University
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