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Three-phase Hydrocarbon Thermodynamic Liquid-Liquid-Vapour Equilibrium in CO2 Process

机译:二相烃热动力液 - 液 - 液 - 液蒸气平衡在CO2过程中

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Hydrocarbon phase behaviour must be rigorously represented when there is a need to properly account for mass transfer between phases in a porous medium. The overly simplified black-oil formulation, although appropriate for primary depletion and waterflooding, provides inadequate representation of miscible displacement processes. As a result, compositional simulation has evolved to provide thermodynamically consistent means to accurately describe the phases and compositions present within the porous reservoir rocks. Compositional simulators have become essential modelling tools for CO2 processes in the Petroleum Industry. Advances in computational power have encouraged the development of meaningful improvements and refinements that were not possible until very recently. CO2 injection into an oil reservoir at low temperatures causes the appearance of a three-phase hydrocarbon thermodynamic Liquid-Liquid-Vapour (LLV) equilibrium. The traditional use of a two-phase flash calculation in this three- phase region may lead to instability problems. Besides, commercial compositional simulators normally do not consider two- phase hydrocarbon Liquid-Liquid (LL) thermodynamic equilibrium that appears in oil reservoirs at low temperatures in the presence of CO2. Instead, it is treated as a Liquid-Vapour (LV) thermodynamic equilibrium and the fluid flux behaviour is not well represented. A compositional simulator must be able to represent adequately the LL hydrocarbon thermodynamic equilibrium when it is present in order to rigorously model the reservoir phase behaviour in the presence of CO2. A novel procedure has been developed to overcome instabilities which may arise in calculation of multiphase liquid- liquid-vapour (LLV) hydrocarbon phase equilibrium. In addition, a new procedure has been developed for representing the thermodynamic liquid-liquid hydrocarbon equilibrium in a compositional simulator. This new procedure represents the real behaviour of the fluid flux. It is more rigorous than the traditional approach of lumping of the two liquid phases into a pseudo single liquid phase or as a liquid-vapour (LV) thermodynamic equilibrium. The results of this implementation are presented and analyzed in detail.
机译:当需要正确地考虑多孔介质中相之间的阶段的质量转移时,必须严格地表示烃相行为。过度简化的黑色油制剂虽然适用于初级耗尽和水上型,但提供了可混溶性排量过程的表示不足。结果,组成模拟已经进化以提供热力学一致的方法,以准确描述多孔储层岩石内存在的阶段和组合物。组成模拟器已成为石油工业中二氧化碳工艺的基本建模工具。计算能力的进步鼓励开发有意义的改善和改进,直到最近是不可能的。在低温下注射到储油器中的二氧化碳导致三相烃热力学液 - 液 - 液 - 蒸气(LLV)平衡的外观。在该三相区域中传统使用两相闪光计算可能导致不稳定问题。此外,商业成分模拟器通常不考虑在CO 2存在下在低温下出现在油储存器中出现的两相烃液 - 液(LL)热力学平衡。相反,它被视为液体 - 蒸汽(LV)热力学平衡,并且流体磁通量不太出色。当存在时,组合模拟器必须能够充分表示LL烃热力学平衡,以便在CO 2存在下严格地模拟储层相行为。已经开发了一种新的程序来克服在多相液 - 液 - 蒸气(LLV)烃相位平衡计算中可能出现的稳定性。此外,已经开发了一种用于代表组合物模拟器中的热力学液液烃平衡的新方法。该新程序代表了流体通量的实际行为。它比传统的将两个液相的传统方法流入伪单液相或液体 - 蒸气(LV)热力学平衡。将详细介绍和分析该实施的结果。

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