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An Investigation into the Benefits of Combined Polymer-Low Salinity Waterflooding

机译:对聚合物 - 低盐度加水上的益处的调查

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Polymer flooding and low salinity waterflooding are two different but potentially complementary Enhanced Oil Recovery(EOR)techniques. Polymer flooding improves fractional flow and sweep efficiency by improving the mobility ratio for the displacement. Low salinity waterflooding improves pore scale displacement efficiency by changing the wettability of the reservoir rocks toward more water-wet. Reduced salinity water is often used in polymer injection to reduce hydrolysis however the water salinity in this case is typically higher than that needed to obtain a true low salinity effect. This paper describes the outcomes of a systematic study into the potential benefits of combined polymer-low salinity waterflooding versus polymerhigh salinity waterflooding,polymer-reduced salinity waterflooding and conventional waterflooding. Numerical simulation,validated against analytical solutions,was used to evaluate the relative performance of these processes. The impacts of layering and reservoir heterogeneity were investigated using two-dimensional(2D)and three-dimensional(3D)reservoir models. Sensitivity studies of injected water salinity and the start time of injection were carried out in each of these models. Outcomes were compared against the recoveries and water cuts predicted using a one-dimensional(1D)analytic solution for the EOR processes to evaluate the impact of sweep versus displacement efficiency on incremental oil recovery and water cut. Combined polymer-low salinity waterflooding shows an improvement in recovery and reduction in water cut compared with the other EOR processes in all cases. We show this is partly due to improving the fractional flow(increasing shock front saturation)but is also due to both the leading and trailing shock fronts in polymer-low salinity waterflooding being more stable than in the other EOR processes,reducing the possibility of viscous finger growth and thus increasing performance. The highest incremental oil recovery is observed when the injected water salinity in the combined polymer-low salinity waterflooding is reduced to below the low salinity threshold. It is clearly beneficial to reduce the water salinity to this low level rather than just to a salinity where hydrolysis is prevented. The injection of the combined EOR technique in tertiary mode,particularly at 75% water cut after performing high salinity waterflooding,exhibits an incremental oil recovery of between 15 and 42% and a reduction in water cut of between 11 and 48% at 1.0 pore volume injected(PVI). This is the first systematic investigation into the performance of combined polymer-low salinity waterflooding compared with conventional waterflooding,low salinity waterflooding,and polymer flooding with reduced salinity water. It provides a clear insight into the benefits of combined EOR process justifying the need for field scale pilots and further laboratory studies.
机译:聚合物驱油和低盐度水驱是两个不同的但潜在互补的强化油采收(EOR)的技术。聚合物驱油增大通过改善位移的迁移率比分流和扫效率。低盐度水驱通过改变储层岩石的润湿性朝着更水湿提高孔隙尺度位移的效率。降低盐度水经常被用来在聚合物注射以减少水解然而,在这种情况下,水的盐度通常比以获得一个真正的低盐度效果需要更高。本文描述了系统的研究的结果组合成组合的聚合物 - 低矿化度的与水驱盐度polymerhigh注水,聚合物还原盐度注水和常规注水的潜在益处。数值模拟,对分析解决方案验证,被用来评估这些过程的相对表现。使用二维(2D)和三维(3D)的油藏模型分层和非均质性的影响进行了研究。注入水的盐度和注射的开始时间的敏感性研究,在这些车型中进行。结果都能够抵抗回收率相比和水削减使用一维(1D)分析用于EOR工艺溶液来评估扫描的与增量油的回收和水切割位移效率的影响的预测。合并的聚合物 - 低矿化度水驱示出了具有在所有情况下,其他EOR工艺相比在水供应恢复的提高和降低。我们表明这部分是由于提高了分数流(增加休克前饱和度),但也因两者的前沿和在聚合物 - 低矿化度水驱更加稳定比其他EOR工艺后激波阵面,降低的粘性的可能性手指的生长,从而增加性能。当在组合的聚合物的低盐度水驱注入的水盐度低于低阈值盐度降低到被观察到的最高的增量油采收。这显然是有利于水的盐度降低到这个水平低,而不是仅仅以其中防止水解的盐度。在第三模式中,组合的EOR技术,特别是在75%含水的执行高盐度注水后的注射液,表现出的%15和42之间的增量油回收,并在1.0孔隙体积的11和48%之间的含水量的降低注射(PVI)。这是第一系统的调查合并的聚合物 - 低矿化度的性能注水与常规注水,低盐度水驱,并具有降低的盐度水聚合物驱比较。它提供了一个清晰的洞察结合EOR过程中证明了田间尺度飞行员和进一步的实验室研究的必要性的好处。

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