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Volumetric Properties of Electrolytes in Natural Waters.

机译:天然水中电解质的体积特性。

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摘要

The research of this dissertation has focused on the volumetric properties of electrolyte solutions, including seawater, across wide ranges of temperature and concentration. The volume and compressibility are inherently useful as physical chemical properties of electrolyte solutions. They are directly related to the density and sound speed of a solution; thus, they are important for studying physical processes and properties in the ocean, including mixing, sound transmission, and water mass stability. Possibly of greater significance, however, is the volume's role as a thermodynamic variable that guides chemical systems into equilibrium. By analyzing the volume properties of electrolyte solutions over wide ranges of temperature and concentration, the results of this dissertation can be used to study the physical chemistry of the ocean, from the surface to depth, geothermal waters, estuaries, rivers, and industrially treated waters.;In the first part of my thesis work, I have examined the volume properties of electrolytes, including seawater and rare earth elements from measurements of the density and sound speed. Using the volume parameters, I evaluated two different chemical computational models to estimate the density and compressibility of mixed solute solutions on a composition basis over a wide range of temperature and concentration. The results have applicability for examining brines to fresh waters, and can be used in industrial applications of seawater, such as desalination and other chemical engineering treatments.;In the second part of my dissertation, I make use of the volume as a thermodynamic variable to estimate the effect of pressure on a chemical equilibrium reaction. The partial molal volume (V¯) is the pressure partial derivative of the Gibb's Free Energy (G) and it can be used to examine various equilibrium reactions, including ion association, acid dissociation, and mineral solubility. I have examined the volume change for the dissociation of a Tris buffer, to predict the effect of pressure on its equilibrium. The Tris buffer is used in ocean studies to calibrate electrodes and indicators for measuring the pH of ocean waters, and knowledge of the effect of pressure on the buffer's dissociation reaction will be useful for the in-situ calibration of pH sensors.;The results of this dissertation can contribute to: 1) defining the thermodynamic state variables of various electrolyte solutions, including seawater, rare earth elements, and the Tris buffer with volume and compressibility measurements; 2) enabling the prediction of physical chemical properties of mixed-solute solutions of varying composition; and 3) enabling the prediction of the effect of pressure on chemical equilibria. Further studies on the volumetric properties of trace metals and organic complexes are recommended.
机译:本论文的研究集中在温度和浓度范围广泛的电解质溶液(包括海水)的体积特性。体积和可压缩性固有地可用作电解质溶液的物理化学性质。它们与解决方案的密度和声速直接相关。因此,它们对于研究海洋中的物理过程和特性(包括混合,声音传输和水质稳定性)非常重要。然而,可能更重要的是体积作为热力学变量的作用,可引导化学系统达到平衡。通过分析电解质溶液在温度和浓度范围内的体积特性,本论文的结果可用于研究海洋的物理化学,从表面到深度,地热水,河口,河流和工业处理水在论文的第一部分中,我通过测量密度和声速来检查电解质的体积特性,包括海水和稀土元素。使用体积参数,我评估了两种不同的化学计算模型,以估计在各种温度和浓度范围内基于成分的混合溶质溶液的密度和可压缩性。该结果可用于检查淡水中的盐水,并且可用于海水的工业应用中,例如淡化和其他化学工程处理。;在论文的第二部分中,我将体积用作热力学变量估计压力对化学平衡反应的影响。摩尔体积分数(V¯¯)是吉布自由能(G)的压力偏导数,可以用来检查各种平衡反应,包括离子缔合,酸解离和矿物溶解度。我已经检查了Tris缓冲液解离的体积变化,以预测压力对其平衡的影响。 Tris缓冲液用于海洋研究中,用于校准用于测量海水pH值的电极和指示剂,了解压力对缓冲液解离反应的影响将有助于pH传感器的原位校准。本文的研究工作有以下几个方面:1)通过体积和压缩率测量,定义各种电解质溶液的热力学状态变量,包括海水,稀土元素和Tris缓冲液。 2)能够预测组成不同的混合溶质溶液的物理化学性质; 3)能够预测压力对化学平衡的影响。建议对痕量金属和有机络合物的体积性质进行进一步研究。

著录项

  • 作者

    Rodriguez, Carmen.;

  • 作者单位

    University of Miami.;

  • 授予单位 University of Miami.;
  • 学科 Chemical oceanography.;Physical chemistry.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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