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Thermodynamic model for water and high-pressure ices up to 2.2 GPa and down to the metastable domain

机译:高达2.2 GPa且低至亚稳域的水和高压冰的热力学模型

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We propose a thermodynamic model of the properties of liquid water and ices I, III, V, and VI that can be used in the ranges of 0-2200 MPa and 180-360 K. This model is the first to be applicable to all H2O phases in these wide ranges, which exceed the stability domain of all phases. Developing empirical or semiempirical expressions for the specific volumes of liquid water or ices has been necessary. The model has been tested on available experimental data sets. The specific volume of liquid water is reproduced with an accuracy better than 1%. The error on the specific volume of ices remains within 2%. The model has also been used to describe the melting curves of high-pressure ice polymorphs and compared with new Simon equations fitting available data. Our calculations suggest a slight revision of the triple point positions in the H2O phase diagram. We have ensured the reliability of our model up to 1.5 GPa, and we have shown that it can be used with good confidence up to 2.2 GPa. In order to show the validity of this model in the low-temperature domains, the melting curve of ice Ih in the water-ammonia system has been modeled. This curve is reproduced with good accuracy down to 180 K, at a 1 bar pressure. It shows that this model can be used in further studies for modeling equilibriums involving liquid or solid phases of H2O under pressure and for investigating the effect of inhibitors in complex water-rich systems. (C) 2007 American Institute of Physics.
机译:我们提出了液态水和冰I,III,V和VI的性质的热力学模型,可以在0-2200 MPa和180-360 K的范围内使用。该模型是第一个适用于所有H2O的模型这些宽范围内的相超过了所有相的稳定域。对于特定体积的液态水或冰,需要开发经验或半经验表达式。该模型已在可用的实验数据集上进行了测试。以比1%更好的精度复制液态水的比容。特定冰块的误差保持在2%以内。该模型也已用于描述高压冰晶型的融化曲线,并与适合现有数据的新Simon方程进行了比较。我们的计算表明,H2O相图中的三点位置略有修改。我们确保了模型高达1.5 GPa的可靠性,并且我们证明了模型可以可靠地使用高达2.2 GPa的模型。为了显示该模型在低温区域的有效性,对水-氨系统中冰Ih的融化曲线进行了建模。在1 bar压力下,该曲线在低至180 K的情况下均能以较高的精度复制。它表明该模型可用于进一步研究,以建立涉及压力下H2O液相或固相的平衡模型,以及研究抑制剂在复杂的富水系统中的作用。 (C)2007美国物理研究所。

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