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Chemical Sensor Development in Oceanography.

机译:海洋学中的化学传感器开发。

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摘要

In situ autonomous chemical sensors, combined with the right deployment platforms provide novel, powerful tools for oceanographers to observe biogeochemical processes on unprecedented spatial and temporal scales. However, many aspects of chemical sensor technology have not yet reached full maturity, preventing routine use by the community at large. This dissertation aims to fill this critical need in ocean observing technology, with a focus on Ion Sensitive Field Effect Transistor (ISFET) pH sensors for profiling float applications. Following a brief introduction to the current status of marine chemical sensor technology, the four chapters address the various steps involved in sensor development: sensor characterization, calibration, data quality control (QC), and a modeling effort using sensor data.;Chapter 2 introduces a simple QC protocol for profiling float oxygen data by comparison to a monthly climatology. This protocol can constrain O 2 at the surface to better than 3%, and detect sensor drift with high confidence. Similar approaches can be taken to QC other chemical sensors data from profiling floats.;Chapter 3 characterizes the response of the ISFET pH sensor and the Chloride-Ion Selective Electrode by comparison to the hydrogen electrode and the silver-silver chloride electrode, respectively. Both electrodes showed near-Nernstian response, thus the error in pH due to non-theoretical behavior of the electrodes is negligible over the oceanic range of pH and salinity.;Chapter 4 quantifies the effect of pressure on the pH of certified tris buffer prepared in synthetic seawater. Assignment of pH values to certified buffer solutions is essential for sensor calibration. As the number of pH sensors deployed under high pressures is expected to increase, this chapter will fill a critical need in sensor validation and traceability.;Chapter 5 presents habitat-specific ocean acidification projections between 2012 and 2100 for 4 habitats in the upper 100 m of the Southern California Bight. The projections were generated by combining high frequency pH sensor data, a regional empirical relationship of the CO2 system, and hydrographic data to characterize the properties of upwelled waters. Habitat specific acidification signals were predicted, and implications for future ocean acidification research are discussed.
机译:原位自主的化学传感器与正确的部署平台相结合,为海洋学家提供了新颖而强大的工具,以前所未有的时空尺度观察生物地球化学过程。但是,化学传感器技术的许多方面尚未完全成熟,从而阻止了整个社区的常规使用。本文旨在满足海洋观测技术的这一关键需求,重点是用于浮子应用的离子敏感场效应晶体管(ISFET)pH传感器。在简要介绍了海洋化学传感器技术的现状之后,这四章介绍了传感器开发中涉及的各个步骤:传感器表征,校准,数据质量控制(QC)和使用传感器数据的建模工作。第二章介绍一个简单的QC协议,用于通过与每月气候比较来分析浮氧数据。该协议可以将表面的O 2约束到3%以上,并以高置信度检测传感器漂移。可以使用类似的方法对仿形浮标中的其他化学传感器数据进行质量控制。第三章分别通过与氢电极和银-氯化银银电极比较,表征了ISFET pH传感器和氯离子选择电极的响应。两个电极均显示出接近能斯特的响应,因此在海洋pH和盐度范围内,由于电极的非理论行为引起的pH误差可以忽略不计;第4章量化了压力对制备的认证Tris缓冲液pH的影响。合成海水。将pH值分配给认证的缓冲溶液对于传感器校准至关重要。由于预计在高压下部署的pH传感器的数量将增加,本章将满足传感器验证和可追溯性的关键需求。第5章介绍了2012年至2100年之间100 m上游4个生境的特定生境海洋酸化预测。南加州湾。这些预测是通过结合高频pH传感器数据,CO2系统的区域经验关系以及水文数据来表征上升水域的特性而生成的。可以预测栖息地特定的酸化信号,并讨论对未来海洋酸化研究的意义。

著录项

  • 作者

    Takeshita, Yuichiro.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Ocean engineering.;Physical oceanography.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 151 p.
  • 总页数 151
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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