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Design and Tuning of Nanofluids Applied to Chemical Enhanced Oil Recovery Based on the Surfactant–Nanoparticle–Brine Interaction: From Laboratory Experiments to Oil Field Application

机译:基于表面活性剂 - 纳米粒子 - 盐水相互作用的纳米流体纳米流体的设计和调整:从实验室实验到油田应用

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摘要

The primary objective of this study is to develop a novel experimental nanofluid based on surfactant–nanoparticle–brine tuning, subsequently evaluate its performance in the laboratory under reservoir conditions, then upscale the design for a field trial of the nanotechnology-enhanced surfactant injection process. Two different mixtures of commercial anionic surfactants (SA and SB) were characterized by their critical micelle concentration (CMC), density, and Fourier transform infrared (FTIR) spectra. Two types of commercial nanoparticles (CNA and CNB) were utilized, and they were characterized by S , FTIR spectra, hydrodynamic mean sizes (dp ), isoelectric points (pH ), and functional groups. The evaluation of both surfactant–nanoparticle systems demonstrated that the best performance was obtained with a total dissolved solid (TDS) of 0.75% with the SA surfactant and the CNA nanoparticles. A nanofluid formulation with 100 mg·L of CNA provided suitable interfacial tension (IFT) values between 0.18 and 0.15 mN·m for a surfactant dosage range of 750–1000 mg·L . Results obtained from adsorption tests indicated that the surfactant adsorption on the rock would be reduced by at least 40% under static and dynamic conditions due to nanoparticle addition. Moreover, during core flooding tests, it was observed that the recovery factor was increased by 22% for the nanofluid usage in contrast with a 17% increase with only the use of the surfactant. These results are related to the estimated capillary number of 3 × 10 , 3 × 10 , and 5 × 10 for the brine, the surfactant, and the nanofluid, respectively, as well as to the reduction in the surfactant adsorption on the rock which enhances the efficiency of the process. The field trial application was performed with the same nanofluid formulation in the two different injection patterns of a Colombian oil field and represented the first application worldwide of nanoparticlesanofluids in enhanced oil recovery (EOR) processes. The cumulative incremental oil production was nearly 30,035 Bbls for both injection patterns by May 19, 2020. The decline rate was estimated through an exponential model to be −0.104 month before the intervention, to −0.016 month after the nanofluid injection. The pilot was designed based on a production increment of 3.5%, which was successfully surpassed with this field test with an increment of 27.3%. This application is the first, worldwide, to demonstrate surfactant flooding assisted by nanotechnology in a chemical enhanced oil recovery (CEOR) process in a low interfacial tension region.
机译:本研究的主要目的是开发一种基于表面活性剂 - 纳米粒子 - 盐水调谐的新型实验纳米流体,随后在水库条件下评估其在实验室中的性能,然后高档纳米技术增强的表面活性剂注入过程的实地试验设计。通过它们的临界胶束浓度(CMC),密度和傅里叶变换红外(FTIR)光谱,表征了两种不同的商业阴离子表面活性剂(SA和SB)。使用两种类型的商业纳米颗粒(CNA和CNB),其特征在于S,FTIR光谱,流体动力学平均尺寸(DP),等电点(pH)和官能团。对表面活性剂 - 纳米粒子系统的评价证明,用SA表面活性剂和CNA纳米颗粒的总溶解固体(TDS)的总溶解固体(TDS)获得了最佳性能。具有100mg·L·L CNA的纳米流体配方提供了0.18和0.15mN·m的合适的界面张力(IFT)值,其表面活性剂剂量范围为750-1000mg·l。由吸附试验获得的结果表明,由于纳米颗粒添加,岩石上的表面活性剂吸附在静态和动态条件下减少至​​少40%。此外,在核心泛洪试验期间,观察到纳米流体使用的回收率增加了22%,相反,对于仅使用表面活性剂的增加,增加17%。这些结果与盐水,表面活性剂和纳米流体的估计毛细数为3×10,3×10和5×10,以及岩石上的表面活性剂吸附的减少过程的效率。在哥伦比亚油田的两种不同喷射图案中具有相同的纳米流体制剂进行现场试验施用,并在增强的溢油(EOR)过程中表示全世界纳米颗粒/纳米流体的第一应用。累积增量石油产量为2020年5月19日的注射模式近30,035桶。通过指数模型估算下降率至-0.104季节前纳米流体注射液至-0.016个月。该试点是根据生产增量的3.5%设计的,该试验成功超越了此现场测试,增量为27.3%。本申请是全球第一,在低界面张力区域中纳米技术在化学增强的采油(CEOR)过程中辅助纳米技术辅助的表面活性剂洪水。

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