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An analysis of physical models and numerical schemes for polymer flooding simulations

机译:聚合物驱模拟的物理模型和数值方案分析

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Chemical-enhanced oil recovery (CEOR) processes are nowadays commonly used by engineers to improve the recovery factor of an oil field. In this paper, we propose to investigate the physical and numerical singularities arising in the numerical simulation of polymer-enhanced oil recovery technique for oil fields. We assume that the polymer is only transported in the water phase or adsorbed on the rock. The polymer reduces the water-phase mobility and can change drastically the behavior of water oil interfaces. Due to its size, the polymer flows faster than water so that an inaccessible pore volume must be added in the model. After a brief description of different models for polymer adsorption, mobility reduction, and inaccessible pore volume, we discuss the mathematical singularities of the obtained system. In the framework of industrial reservoir simulators, we focus on a constant inaccessible pore volume model which may lead to severe mathematical and numerical singularities. We consider an IMPES scheme; we propose approximate Courant-Friedrichs-Levy (CFL) criteria which are required to obtain some numerical stability of the simulation. 1D numerical polymer flooding experiments are computed with a complete reservoir simulator to illustrate the validity of our approximate CFL criteria.
机译:如今,工程师们通常使用化学强化采油(CEOR)工艺来提高油田的采收率。在本文中,我们提议研究在聚合物增强油田采油技术数值模拟中出现的物理和数值奇异之处。我们假设聚合物仅在水相中运输或吸附在岩石上。聚合物会降低水相的迁移率,并会大大改变水油界面的行为。由于其尺寸,聚合物的流动速度比水快,因此必须在模型中增加无法接近的孔体积。在简要描述了聚合物吸附,迁移率降低和无法到达的孔体积的不同模型之后,我们讨论了所得系统的数学奇点。在工业油藏模拟器的框架中,我们专注于恒定的不可访问的孔隙体积模型,这可能导致严重的数学和数值奇异性。我们考虑了IMPES计划;我们提出了近似的Courant-Friedrichs-Levy(CFL)标准,这些标准对于获得模拟的数值稳定性是必需的。使用完整的油藏模拟器来计算一维数值聚合物驱实验,以说明我们近似CFL标准的有效性。

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