首页> 外文期刊>Geochimica et Cosmochimica Acta: Journal of the Geochemical Society and the Meteoritical Society >Infinite dilution partial molar properties of aqueous solutions of nonelectrolytes. II. Equations for the standard thermodynamic functions of hydration of volatile nonelectrolytes over wide ranges of conditions including subcritical temperatures
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Infinite dilution partial molar properties of aqueous solutions of nonelectrolytes. II. Equations for the standard thermodynamic functions of hydration of volatile nonelectrolytes over wide ranges of conditions including subcritical temperatures

机译:非电解质水溶液的无限稀释部分摩尔特性。二。在包括亚临界温度在内的各种条件下,挥发性非电解质水合的标准热力学函数方程

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The volumetric equation proposed previously (Plyasunov et al., 2000), for estimating the infinite dilution Gibbs energy of hydration of volatile nonelectrolytes at temperatures exceeding the critical temperature of pure water, T-c, is extended to subcritical temperatures. The basis for the extension without inclusion of new fitting parameters besides the experimental values of the thermodynamic functions of hydration at 298.15 K, 0.1 MPa, is an auxiliary function, Delta(h)Cp(0)(T, P-r), for the variation of the infinite dilution partial molar heat capacity of hydration of a solute in Liquid-like water between temperatures T = 273.15 K and T = T-s = 658 K along the isobar P-r = 28 MPa. The analytical form of Delta(h)Cp(0)(T, P-r) was found by globally fitting all available data for the seven best-studied solutes (CH4, CO2, H2S, NH3, Ar, Xe, and C2H4). Four constraints were used to determine the values of four terms of the Delta(h)Cp(0)(T, P-r) function: the numerical values of the temperature increments between T = 298.15 K and T = T-s = 658 K for the Gibbs energy and the enthalpy of hydration, and numerical value of the heat capacity at T-s and at 298.15 K, all at the selected isobar P-r. This approach, in combination with the volumetric equation, may be used to describe and predict all the infinite dilution thermodynamic functions of hydration for nonelectrolytes over extremely wide ranges of temperature and pressure. The model allows calculation of the standard state partial molar properties, including the Gibbs energy of aqueous solutes in a single framework for conditions from high-temperature magmatic processes through hydrothermal phenomena to low-temperature conditions of hypergenesis. Copyright (C) 2000 Elsevier Science Ltd. [References: 89]
机译:先前提出的体积方程(Plyasunov等,2000),用于估算在超过纯水临界温度T-c的温度下,挥发性非电解质水合的无限稀释吉布斯能量,扩展到了亚临界温度。除了在298.15 K,0.1 MPa时水化热力学函数的实验值之外,不包含新拟合参数的扩展基础是用于变化的辅助函数Delta(h)Cp(0)(T,Pr)沿等压线Pr = 28 MPa在温度T = 273.15 K和T = Ts = 658 K之间在液体状水中无限溶解的部分溶质的水合摩尔热容的变化。通过全局拟合七个最佳研究溶质(CH4,CO2,H2S,NH3,Ar,Xe和C2H4)的所有可用数据,找到Delta(h)Cp(0)(T,P-r)的分析形式。四个约束条件用于确定Delta(h)Cp(0)(T,Pr)函数的四个项的值:Gibbs的T = 298.15 K和T = Ts = 658 K之间的温度增量的数值能量和水化焓,以及在Ts和298.15 K时的热容数值,均在选定的等压线Pr处。这种方法与体积方程式相结合,可用于描述和预测在极宽的温度和压力范围内非电解质水合的所有无限稀释热力学函数。该模型可以计算标准状态的部分摩尔特性,包括在单个框架中从高温岩浆过程到热液现象再到低温成岩作用的条件下的溶质的吉布斯能量。版权所有(C)2000 Elsevier Science Ltd. [参考:89]

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