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Systematic sensitivity analysis to investigate performance of carbonated water injection based on computational dynamic modeling

机译:基于计算动态建模的碳酸注水性能的系统敏感性分析

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Oil recovery is expected to increase considerably by implementation of carbonated water injection (CWI) particularly in the secondary mode, according to various experimental and modeling research works. There have been a few modelling studies and coreflooding tests reported on CWI in open sources. This inadequacy fuels the objectives of this paper. This study reports core scale experiments and computational fluid dynamic (CFD) modeling. To effectively capture the physics involved during CWI, the mass balance equations, momentum balance equations, and reaction equations are solved for the same computational domains of CO2, water, and oil phases. The modeling results are validated by the core scale experimental data of CWI in its secondary application. It is found that there is good agreement between the modeling results and real data; thus, the introduced CFD model can adequately simulate the CWI process. The developed model is also used to investigate the effects of operational parameters/conditions and rock dissolution during CWI. Based on the research results, an increase in the injection rate from 0.2 cm(3)/min to 0.8 cm(3)/min gives an additional oil recovery of 6% for a core with a length of 10.33 cm and a diameter of 3.83 cm. There is an optimum injection rate above which there is no significant change in the oil recovery. Increasing the injection pressure leads to a more dissolution of CO2 into the resident fluid, which improves the overall performance of CWI such that the oil recovery is enhanced by an additional 16% upon an increase in the injection pressure from 1500 psi to 3500 psi. There is no evidence of rock dissolution based on the results attributed to permeability changes in a property-distance plot. With the use of the developed model and experimental results, the CWI upscaling can be performed with careful technical, environmental, and economic considerations.
机译:根据各种实验和建模研究作品,预计通过实施碳酸注射注水(CWI),预计碳酸注射注水(CWI)将大大增加。在开放来源的CWI上报告了一些建模研究和COREPLOCHING测试。这种不足燃料燃料本文的目标。本研究报告了核心规模实验和计算流体动态(CFD)建模。为了有效地捕获CWI期间所涉及的物理,质量平衡方程,动量平衡方程和反应方程被解决用于CO 2,水和油阶段的相同计算结构域。建模结果由CWI中的核心规模实验数据验证其二级应用。发现建模结果与实际数据之间存在良好的一致性;因此,介绍的CFD模型可以充分模拟CWI过程。开发的模型还用于研究CWI期间操作参数/条件和岩石溶解的影响。基于研究结果,注射速率从0.2厘米(3)/ min的增加至0.8cm(3)/ min,为芯的额外的储存额为6%,长度为10.33厘米,直径为3.83厘米。最佳注射率高于其油回收率没有显着变化。增加注射压力导致CO2的溶解在驻留流体中,这提高了CWI的整体性能,使得在从1500psi至3500psi的喷射压力增加时额外增加了16%的油回收。没有基于属性距离图中的渗透性变化的结果基于岩石溶解的证据。随着开发的模型和实验结果的使用,CWI Umaling可以通过仔细的技术,环境和经济考虑来进行。

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