Net Biological Oxygen Production Using O2 Measurements on Argo Floats
Net Biological Oxygen Production Using O2 Measurements on Argo Floats
批准号:
1129112
负责人:
Steven Emerson
金额:
$78.6万
依托单位:
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2011
资助国家:
美国
项目状态:
已结题
起止时间:
2011-09-01 至 2015-08-31
中文摘要
现在,通过提高现场氧气测量的质量,可以设想在全球范围内对海洋上部2000米处氧气浓度的准确季节性变化进行测量。目前,这些测量可以通过浮标、系泊装置和滑翔机进行远程测量。对Argo浮标上氧传感器迄今传回的数据的分析表明,这些测量的准确性目前还不足以解决海-气氧交换和温跃层中十年尺度氧变化缓慢等紧迫问题。然而,最近在系泊设备和滑翔机上进行的氧气测量工作表明,如果建立了校准协议,则可以使用可用的传感器确定氧气浓度,精度优于+/-0.5%,这足以解决这些问题。在这个项目中,华盛顿大学的研究人员希望使用基于浮子的Aanderaa Optode传感器来证明这一点,这些传感器在具有战略海洋学意义的西北太平洋黑潮延伸区(Northwest Pacific Kuroshio Extension)的浮子部署之前和期间进行了校准。这是一个冬季pCO 2强烈下降的区域,由物理和生物过程引起。 该小组将评估生物过程在创造碳汇方面的相对重要性,方法是根据该地区浮子和水面系泊装置上确定的O2数据确定净生物氧产量。 因此,该项目有两个主要目标:(1)测试必要的程序,以提高在剖面浮标上进行现场氧气测量的准确性,以便制定未来扩大O2传感器部署的协议;(2)确定生物生产在控制西北太平洋表层海洋pCO 2冬季急剧下降中的作用。该小组将在黑潮延伸区部署10个装有氧传感器的Argo浮标(由Argo公司出资建造)。还将在该地区现有的水面系泊设施上部署一个氧气传感器和气体张力装置,以获得更详细的数据时间序列,与浮子测量结果进行比较。氧气传感器将在部署前在实验室进行校准,并在部署后在海洋中进行现场校准,方法是将其输出与温克勒滴定法的测量结果进行比较。浮标将被编程,以便在浮出水面时在大气中进行测量,并通过卫星将数据传输到海岸,作为现场校准的一种手段。有了这种校准冗余,他们将能够确定必要的协议,以实现准确的原位O2数据在一个更广泛的规模与更少的广泛校准。更广泛的影响。对海洋研究界的更广泛影响包括制定一项O2传感器校准协议,以便它们可以在自主平台上更广泛地原位使用。对教育的更广泛影响包括华盛顿大学研究船RV T.G.上的“学生巡航”。汤普森 这次巡航将使10-15名本科生接触实地海洋学和海洋研究的经验,同时完成本科海洋学学位所需的顶点研究。华盛顿大学已承诺12天的船舶时间,以适应研究的教育方面。
英文摘要
It is now possible to envision global-scale measurements of accurate, seasonal variations of oxygen concentrations in the upper 2000 meters of the ocean by improving the quality of in situ oxygen measurements. These measurements can presently be made remotely by floats, moorings, and gliders. Analysis of data returned so far from oxygen sensors on Argo floats indicates that accuracy of these measurements is presently not sufficient to solve the pressing problems of air-sea oxygen exchange and slow decadal-scale O2 change in the thermocline. However, recent work with oxygen measurements on moorings and gliders suggest that it is possible to determine oxygen concentrations using available sensors to better than +/- 0.5 % accuracy if calibration protocols are established, which would be sufficient to address these problems. In this project, researchers at the University of Washington hope to demonstrate this using float-based Aanderaa Optode sensors calibrated before and during float deployment in a location of strategic oceanographic interest -- the Northwest Pacific Kuroshio Extension. This is a region of intense pCO2 draw down in winter caused by a combination of physical and biological processes. The team will evaluate the relative importance of biological processes in creating the carbon sink by determining the net biological oxygen production from O2 data determined on floats and on a surface mooring in the area. The project thus has two main goals: (1) to test the procedures necessary to improve accuracy of in situ oxygen measurements on profiling floats so that a protocol for future expansion of O2 sensor deployment can be developed; and (2) to determine the role of biological production in controlling the dramatic wintertime draw-down of surface ocean pCO2 in the Northwest Pacific Ocean. The team will deploy 10 Argo floats (constructed at Argo expense) with oxygen sensors in the Kuroshio Extension region. An oxygen sensor and gas tension device will also be deployed on an existing surface mooring in the region to derive a much more detailed data time series to compare with the float measurements. The oxygen sensors will be calibrated both in the laboratory before deployment and in situ in the ocean after deployment by comparing their output to measurements by Winkler titration. The floats will be programmed to make measurements in the atmosphere when they surface to transmit data to shore via satellite as a means of in situ calibration. With this calibration redundancy they will be able to determine the protocol necessary to achieve accurate in situ O2 data on a much broader scale with less extensive calibration. Broader Impacts. Broader impacts to the marine research community include development of a protocol for calibration of O2 sensors so they can be used more broadly in situ on autonomous platforms. Broader impacts to education involve a "student cruise" on the University of Washington research vessel RV T.G. Thompson. This cruise will expose 10-15 undergraduate students to the experience of field oceanography and marine research, while fulfilling their required capstone research for the undergraduate oceanography degree. The University of Washington has committed twelve days of the ship time to accommodate the educational aspects of the study.
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会议论文
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Stable Isotopes of Argon in Seawater: New Tracers of Deep Water Formation Processes
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海外基金