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Simulation of the immiscible WAG Process using cycle-dependent three-phase relative permeabilities

机译:使用与周期有关的三相相对磁导率模拟不相容的WAG过程

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Oil recovery by immiscible WAG is dependent on the saturation cycles that occur in a core-flood or in the reservoir. For the reservoir case, segregation of gas and water can generate other saturation cycles than in a core-flood. In order to predict WAG behavior in the reservoir from experimental results, numerical models with an effective hysteresis description of the three-phase oil, water and gas relative permeabilities should be considered. There has earlier been developed a methodology that accounts for both three-phase flow effects and hysteresis effects in numerical simulations of the immiscible WAG process. Simulation studies have shown how three-phase flow description may influence the choice of drive mechanisms and also the design of a WAG process. Furthermore, a principal component analysis (PCA) is conducted on the simulation model that is consistent with the experimental data. The results from the PCA showed how the hysteresis parameters in the simulation model may be correlated to the physical system. The PCA analysis describe how the three-phase effects in water and gas relative permeabilities are connected to oil recovery. The results show that the cycle-dependent relative permeabilities increase the potential for WAG. Furthermore, the oil production trends with respect to slug length and water-oil ratio is different for models with cycle-dependent hysteesis and without hysteresis.
机译:不混溶的WAG采油取决于岩心驱油或储层中发生的饱和循环。对于储层情况,气体和水的隔离会产生除岩心驱替以外的其他饱和循环。为了从实验结果预测储层中的WAG行为,应考虑对三相油,水和天然气的相对渗透率具有有效滞后描述的数值模型。早先已经开发出一种方法,该方法在不混溶的WAG过程的数值模拟中考虑了三相流效应和滞后效应。仿真研究表明,三相流描述如何影响驱动机构的选择以及WAG工艺的设计。此外,在与实验数据一致的仿真模型上进行了主成分分析(PCA)。 PCA的结果表明,仿真模型中的磁滞参数如何与物理系统相关。 PCA分析描述了水和天然气相对渗透率中的三相效应如何与采油相关。结果表明,循环相关的相对渗透率增加了WAG的潜力。此外,对于具有取决于周期的滞后和无滞后的模型,关于塞子长度和水油比的采油趋势是不同的。

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