提高含水油藏致密油采收率:三亲性表面活性剂协同CO2吞吸增产的实验研究

IF 4.3 3区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
ACS Omega Pub Date : 2025-07-31 DOI:10.1021/acsomega.5c04576
Yanfu Pi, Zhihao Li*, Dacheng Wang, Li Liu, Shuaishuai Zhao*, Jinyun Wei, Zhiqiang Wang, Mengyi Xing and Junfeng Wang, 
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引用次数: 0

摘要

CO2吞吐在致密储层中具有良好的注入性和抗气窜性,但水相侵入会显著降低其采收率。为了研究水相影响的机理,在不同含水饱和度下进行了CO2涨落实验,并辅以不同注入模式的扩展岩心驱替试验。引入三亲性表面活性剂C8EO3PO2COOCH3 (CEPC)以减轻水相干扰。系统评价了其降低界面张力(IFT)和促进CO2溶解/扩散的性能。通过一维岩心实验确定最佳注入参数,然后进行二维平面驱油实验,评估采收率提高机理。结果表明,水相影响CO2扩散和波及效率,削弱了溶液气驱效应。与无水条件相比,含水饱和度分别为5%、10%和20%时,采收率分别降低了10.25%、19.12%和26.03%。在50%含水饱和度下,CEPC使CO2 -水和CO2 -油的IFT分别降低了89.4%和76.8%,同时使CO2溶解动力学加快了2.1-3.4倍。在20%含水饱和度下,CEPC的最佳浓度为0.5 wt %, CO2吞吐的最佳浸泡压力和浸泡时间分别为20 MPa和12 h。在2D实验中,cepc辅助的CO2吞吐采收率达到了25.36%,比常规CO2注入提高了9.56%。协同作用通过两种机制产生:CEPC通过增加CO2 -油接触和溶解能力,促进CO2跨水相突破,增强溶解气驱力;同时减少微纳米孔隙中水相的毛细管约束,减轻水堵塞,提高波及效率。这些发现为优化含水致密储层中二氧化碳增强纳米颗粒的采收率提供了重要见解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhancing Tight Oil Recovery in Aqueous-Affected Reservoirs: Experimental Investigation of Triphilic Surfactant Synergy with CO2 Huff-and-Puff Stimulation

CO2 huff-and-puff demonstrates excellent injectivity and gas channeling resistance in tight reservoirs, yet aqueous phase invasion significantly diminishes its oil recovery efficiency. To investigate the mechanisms of aqueous phase impacts, CO2 huff-and-puff experiments were conducted under varying water saturation levels, complemented by extended core displacement tests with different injection patterns. A triphilic surfactant, C8EO3PO2COOCH3 (CEPC), was introduced to mitigate aqueous phase interference. Its performance in reducing interfacial tension (IFT) and enhancing CO2 dissolution/diffusion was systematically evaluated. Optimal injection parameters were determined through 1D core experiments, followed by 2D planar flooding experiments to assess recovery enhancement mechanisms. Results reveal that aqueous phases impair CO2 diffusion and sweep efficiency, weakening solution gas drive effects. Compared to anhydrous conditions, oil recovery decreased by 10.25%, 19.12%, and 26.03% at 5%, 10%, and 20% water saturation, respectively. CEPC reduced the CO2–water and CO2–oil IFT by 89.4% and 76.8%, respectively, while accelerating the CO2 dissolution kinetics by 2.1–3.4 times at 50% water saturation. At 20% water saturation, the optimal concentration of CEPC is 0.5 wt %, while the optimal soaking pressure and soaking time for the CO2 huff-and-puff are 20 MPa and 12 h, respectively. In 2D experiments, CEPC-assisted CO2 huff-and-puff achieved 25.36% oil recovery, representing a 9.56% enhancement over conventional CO2 injection. The synergy arises through two mechanisms: CEPC facilitates CO2 breakthrough across aqueous phases to amplify dissolved gas drive by increasing CO2–oil contact and dissolution capacity, while simultaneously reducing capillary confinement of aqueous phases in micronano pores to alleviate water blockage and enhance sweep efficiency. These findings provide critical insights for optimizing the recovery of CO2-enhanced nanoparticles in water-bearing tight reservoirs.

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来源期刊
ACS Omega
ACS Omega Chemical Engineering-General Chemical Engineering
CiteScore
6.60
自引率
4.90%
发文量
3945
审稿时长
2.4 months
期刊介绍: ACS Omega is an open-access global publication for scientific articles that describe new findings in chemistry and interfacing areas of science, without any perceived evaluation of immediate impact.
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