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The Analysis of Compositional Effects on Global Flow Regimes in CO2 Near-Miscible Displacements in Heterogeneous Systems

机译:异构体系中CO2近可混溶性位移的组成效应分析

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This study investigates how compositional effects interact with the flow behavior during near miscible (and immiscible) CO2-oil displacements in heterogeneous systems. A series of numerical simulations modeling 1D slim-tube and 2D areal systems were performed using a fully compositional simulator. With negligible numerical dispersion, the fine-scale (Δx=0.005m) slim-tube simulations were performed to provide the "truth case" in terms of the compositional effects and oil/component recovery. A number of grid resolutions were tested to examine cell-size effects on the simulation accuracy. It was found that coarse cell size not only leads to spreading of the displacing front, but also lowers the displacement efficiency by reducing the component stripping effects, as noted by Orr (2007). The corresponding 2D cases are based on a small heterogeneous sector model of dimensions 50m × 10m, in order that the finest scale displacement physics can be modelled accurately. We investigated various flow regimes ranging from viscous fingering to channeling displacements within heterogeneous random correlated fields. CO2 dissolves in oil at near- miscible conditions and improves the mobility of the oil, but leads to earlier breakthrough of CO2 in both fingering and channeling flow. It was also found that the instability of fingering flow could introduce considerable variation in the composition paths during oil displacement by CO2, compared with the slim- tube simulations, particularly in the later stages of the flood. For this reason, heavier component recovery is more likely to be affected and reduced by viscous instability. In the case of channeling flow, compositional effects were less important since the permeability channel dominated the displacement. Both the ultimate oil recovery and component recovery are significantly and about equally reduced, when the underlying heterogeneity is of dominant influence. To summarize, compositional effects can have a very significant impact on the prediction of near-miscible CO2 EOR projects. Issues such as front stability, local displacement efficiency and formation of fingering/ channeling during CO2 near-miscible displacement can lead to behavior that is significantly different from immiscible flooding in these systems. The process of mass transfer between CO2 and oil can be hampered to a certain degree by unstable flow depending on the level of heterogeneity. This leads to a further reduction in component recovery, particularly of the heavier components. Lastly, the appropriate upscaling methods considering mass transfer still require further investigation for CO2 near-miscible displacement in field-scale applications. The complete dataset and results of this study are available online as a model case example for testing out potential upscaling techniques for compositional flows in heterogeneous systems (Wang et al. 2019).
机译:本研究研究了在异构系统中的混溶性(和不混溶的)二氧化合物位移近的混溶性(和不混溶的)的流动性方面的组成效果如何与流动性能相互作用。使用完全组成模拟器进行建模1D细胞纤维管和2D面积系统的一系列数值模拟。具有可忽略的数值分散体,​​进行细尺(ΔX= 0.005M)切割管模拟,以在组成效果和油/组分回收方面提供“真理案”。测试了许多网格分辨率以检查对模拟精度的细胞尺寸影响。发现粗细胞尺寸不仅导致移位前沿的扩散,而且还通过降低组分剥离效果来降低位移效率,如ORR(2007)所指出的。相应的2D案例基于尺寸为50m×10m的小型异构扇区模型,以便精确地建模最佳刻度位移物理学。我们调查了从粘性指法范围的各种流动制度,从而在异构随机相关领域的流离失所引导。 CO2在近可混溶条件下溶解油,并改善了油的迁移率,而是导致Fingering和通道流动的二氧化碳的突破。还发现,与减压模拟相比,指法流动的不稳定性可能在油位移期间引入组合物路径的相当大的变化,特别是在洪水的后期阶段。因此,通过粘性不稳定性更容易受到较重的成分回收率。在通道流动的情况下,由于渗透性通道主导位移,因此组成效应不太重要。当潜在的异质性具有显着影响时,终极性恢复和组分恢复都显着且大致减少。总而言之,组成效应可以对近可混溶的CO2 EOR项目预测产生非常显着的影响。在CO2近可混溶的位移期间,前稳定性,局部位移效率和指法/通道形成的问题可能导致这些系统中不混溶的洪水显着不同的行为。根据异质性水平,CO 2和油之间的质量传递过程可以被不稳定的流动阻碍于一定程度。这导致成分回收的进一步减少,特别是较重的组分。最后,考虑大规模转移的适当升级方法仍需要进一步研究现场规模应用中的CO2近可混溶的位移。本研究的完整数据集和结果可在线获得,作为用于测试异构系统中的组成流动的潜在升高技术的模型案例示例(Wang等,2019)。

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