课题基金 / 基金详情

Impact of Photochemistry on Carbon Cycling in the Sea

Impact of Photochemistry on Carbon Cycling in the Sea
光化学对海洋碳循环的影响
批准号:
9711206
负责人:
Kenneth Mopper
金额:
$0.0万
依托单位:
依托单位国家:
美国
项目类别:
Continuing grant
财政年份:
1998
资助国家:
美国
项目状态:
已结题
起止时间:
1998-02-15 至 2001-07-31

项目摘要

项目成果

Kenneth Mopper的其他基金

相似基金

相关文献

中文摘要
翻译
物理和生物过程历来被认为是影响海洋碳循环的最重要因素。 具体的过程包括气-海CO2交换、表面混合、深层沃茨排放、碳固定、呼吸作用、碳酸钙形成和沉积。最近 研究 现在 建议 光引发的(光化学)过程也强烈影响海洋表面的碳循环,特别是在溶解有机碳(DOC)的光降解和细菌底物的产生方面。 老化的、生物难降解的DOC的光化学氧化的重要性的证据包括:1)无菌过滤的海水的照射导致CO2、CO和生物可利用的基质的高生产率,2)低生产率的中心环流似乎是净异养的(即,细菌C利用率通常超过初级生产率),3)细菌C利用率估计与开阔海洋表面沃茨中DOM光降解产生的生物不稳定底物的生产率大致相同,以及4)在表面沃茨中被开阔海洋细菌同化的碳的显著部分是同位素老化的。尽管有这些强有力的证据,光化学在海洋碳循环中的定量重要性仍然是未知的。 研究将集中在:(1)CO2的光化学产生, 海洋DOM的CO,(2)DOC的光化学损失,(3) 微生物对光氧化DOM的吸收和降解。 结果 将评估光化学对碳通量的影响, 有机碳质量平衡 在 的 水柱, 包括初级 和 细菌 生产力, 微生物呼吸, 的 BATS站, 颗粒 碳 剂. 我们预计 细菌 利用 光氧化的,老化的DOM可以在很大程度上解释明显的 高细菌C利用率和低初级 生产率,经常观察到的低 生产力沃茨。这项研究的另一个重要目标是 基于行动开发算法 光谱、DOM吸光度和 表面辐照度,以预测表面的光化学速率 沃茨。这些算法结合遥感DOM 荧光预测CO2和CO光化学生产和DOC 光降解率在大面积的海洋。先前 在研究各种海洋中的光化学过程方面取得的成功 环境提供了坚实的基础, 评估 的 这些过程在海洋碳循环中的重要性。
英文摘要
Physical and biological processes are historically considered to be the most important factors affecting the carbon cycle in the ocean. Specific processes include air-sea CO2 exchange, surface mixing, venting of deep waters, carbon fixation, respiration, calcium carbonate formation and sedimentation. Recent studies now suggest that light-initiated (photochemical) processes also strongly impact carbon cycling at the sea surface, particularly with respect to the photodegradation of dissolved organic carbon (DOC) and the production of bacterial substrates. The evidence for the importance of photochemical oxidation of aged, biologically refractory DOC includes: 1) irradiation of sterile-filtered seawater results in high production rates of COz, CO and biologically utilizable substrates, 2) low productivity central gyres appear to be net heterotrophic (i.e., bacterial C utilization rates often exceed primary productivity rates), 3) bacterial C utilization rates are estimated to be about the same as the production rate of biologically labile substrates from DOM photodegradation in open oceanic surface waters, and 4) a significant fraction of the carbon assimilated by open ocean bacteria in surfaces waters is isotonically old. Despite this strong evidence the quantitative importance of photochemistry in the oceanic carbon cycle is still unknown. Studies will focus on: (1) the photochemical production of CO2 and CO from marine DOM, (2) the photochemical loss of DOC, and (3) the microbial uptake and remineralization of photooxidized DOM. Results will assess the impact of photochemistry on carbon fluxes and organic carbon mass balances in the water column, including primary and bacterial productivities, microbial respiration and, at the BATS station, particulate carbon fluxes. We expect Bacterial utilization of photooxidized, aged DOM may largely explain the apparent discrepancy between high bacterial C utilization rates and low primary productivity rates that have been frequently observed for low productivity waters. Another important goal of this study is to develop algorithms, based on action spectra, DOM absorbance and surface irradiance, to predict photochemical rates in surface waters. These algorithms in combination with remotely sensed DOM fluorescence to Predict CO2 and CO photochemical production and DOC photodegradation rates over large areas of the ocean. Previous successes in studying photochemical processes in a variety of marine environments gives a strong foundation for assessing the importance of these processes in the oceanic carbon cycle.
期刊论文(0)
专著(0)
科研奖励(0)
会议论文
Collaborative Research: A dual-dye approach to measuring in situ light fields: development and preliminary field testing
Development of a High-Precision TOC/DOC Analyzer With a nM Detection Limit
Collaborative Research: Comprehensive Chemical Characterization of Marine Dissolved Organic Matter using Efficient Isolation Coupled to Advanced Analytical Techniques
COLLABORATIVE RESEARCH: IMPACT OF DOM SOURCE AND PHOTOOXIDATION ON CARBON CYCLING IN ESTUARIES
海外基金