首页> 外文期刊>Journal of Solution Chemistry >Re-evaluation of the Activity Coefficients of Aqueous Hydrochloric Acid Solutions up to a Molality of 16.0 mol·kg?1 Using the Hückel and Pitzer Equations at Temperatures from 0 to 50 °C
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Re-evaluation of the Activity Coefficients of Aqueous Hydrochloric Acid Solutions up to a Molality of 16.0 mol·kg?1 Using the Hückel and Pitzer Equations at Temperatures from 0 to 50 °C

机译:使用Hückel和Pitzer方程在0至50°C的温度下重新评估摩尔浓度为16.0 mol·kg?1 的盐酸水溶液的活度系数

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The simple three-parameter Pitzer and extended Hückel equations were used for calculation of activity coefficients of aqueous hydrochloric acid at various temperatures from 0 to 50 °C up to a molality of 5.0 mol·kg−1. A more complex Hückel equation was also used at these temperatures up to a HCl molality of 16 mol·kg−1. The literature data measured by Harned and Ehlers J. Am. Chem. Soc. 54, 1350–1357 (1932) and 55, 2179–2193 (1933) and by Åkerlöf and Teare [J. Am. Chem. Soc. 59, 1855–1868 (1937)] on galvanic cells without a liquid junction were used in the parameter estimations for these equations. The latter data consist of sets of measurements in the temperature range 0 to 50 °C at intervals of 10 °C, and data at these temperatures were used in all of these estimations. It was observed that the estimated parameters follow very simple equations with respect to temperature. They are either constant or depend linearly on the temperature. The values for the activity coefficient parameters calculated by using these simple equations are recommended here. The suggested new parameter values were tested with all reliable cell potential and vapor pressure data available in literature for concentrated HCl solutions. New Harned cell data at 5, 15, 25, 35, and 45 °C up to a molality of 6.5 mol·kg−1 are reported and were also used in the tests. The activity coefficients obtained from the new equations were compared to those calculated by using the Pitzer equations of Holmes et al. [J. Chem. Thermodyn. 19, 863–890 (1987)] and of Saluja et al. [Can. J. Chem. 64, 1328–1335 (1986)] at various temperatures, and by using the extended Hückel equation of Hamer and Wu [J. Phys. Chem. Ref. Data 1, 1047–1099 (1972)] at 25 °C.
机译:利用简单的三参数Pitzer方程和扩展的Hückel方程式,计算了0至50°C至5.0 mol·kg-1的摩尔浓度下盐酸水溶液的活度系数。在这些温度下,HCl摩尔浓度达到16 mol·kg-1 时,还使用了更复杂的Hückel方程。文献数据由Harned和Ehlers J. Am。化学Soc。 54、1350–1357(1932)和55、2179–2193(1933)以及Åkerlöf和Teare [J.上午。化学Soc。 59,1855–1868(1937)]上没有液体连接的原电池被用于这些方程的参数估计中。后面的数据由在0至50°C的温度范围内以10°C的间隔进行的一组测量组成,并且在所有这些估计中都使用了这些温度下的数据。据观察,估计的参数关于温度遵循非常简单的方程式。它们是恒定的或线性地取决于温度。建议使用这些简单方程式计算出的活度系数参数值。建议的新参数值已用文献中所有有关浓HCl溶液的可靠电池电势和蒸气压数据进行了测试。报告了在5、15、25、35和45°C时摩尔浓度达到6.5 mol·kg-1 的新的Harned电池数据,这些数据也用于测试中。从新方程式获得的活度系数与使用Holmes等人的Pitzer方程计算的活度系数进行了比较。 [J.化学Thermodyn。 19,863–890(1987)]和Saluja等人。 [能够。 J.化学64,1328–1335(1986)],并使用Hamer和Wu的扩展Hückel方程[J.物理化学参考数据1,1047–1099(1972)]在25°C下进行。

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