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The evolution of multicomponent systems at high pressures: I. The high-pressure, supercritical, gas-liquid phase transition

机译:高压下多组分系统的演变:I.高压,超临界,气-液相转变

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The thermodynamic stability of n-octane has been investigated as a function of temperature, pressure, and degree of molecular clustering at supercritical temperatures. At low pressures, the free enthalpy is shown to be always lowest in the unassociated, gas state, and the system is, in that regime, robustly resistant to clustering. At high pressures, the foe enthalpy of the unassociated, gas state exceeds that of the clustered, liquid state. At the pressure at which the values of the free enthalpies of the gas and liquid states become equal, the system becomes abruptly unstable, and will then spontaneously cluster into effective 'cluster-polymers', and undergo a phase transition to a liquid state. This phenomenon is a geometric effect, and occurs even at supercritical temperatures. The gas-liquid phase transition reported here is closely related to the Alder-Wainwright gas-solid phase transition, the onset of which is applied to approximate the optimal clustering parameter. This phase transition is of the class of entropically-driven phase transitions, characterized by an increase in spatial order accompanied by an increase in entropy, and manifests an inverted latent heat of transformation, analogous to adiabatic demagnetization. (C) 1998 Elsevier Science B.V. All rights reserved. [References: 82]
机译:已经研究了正辛烷的热力学稳定性与温度,压力和超临界温度下分子簇化程度的关系。在低压下,在未缔合的气体状态下,自由焓始终显示为最低,在这种情况下,系统具有较强的抗聚集性。在高压下,未缔合的气体状态的敌人焓超过了聚集的液体状态的敌人焓。在气态和液态自由焓值变得相等的压力下,系统突然变得不稳定,然后将自发聚集成有效的“簇状聚合物”,并发生相转变为液态。此现象是几何效应,甚至在超临界温度下也会发生。此处报道的气液相转变与Alder-Wainwright气固转变密切相关,其开始被用于近似最佳聚类参数。这种相变属于熵驱动的相变,其特征在于空间顺序的增加伴随着熵的增加,并且表现出类似于绝热退磁的反向转化潜热。 (C)1998 Elsevier Science B.V.保留所有权利。 [参考:82]

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