纳米颗粒/VES稳定CO2泡沫提高EOR波及效率的实验研究

A. Ibrahim, H. Nasr-El-Din
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引用次数: 9

摘要

作为聚合物的替代品,CO2泡沫被用于提高EOR的波及效率,以避免潜在的地层损害。泡沫在高温(>212°F)、高盐度环境中以及与原油接触时会降解。本研究评估了纳米颗粒和粘弹性表面活性剂(VES)在提高泡沫稳定性方面的作用,当这些泡沫用作提高采收率的流体时。本研究考察了α -烯烃磺酸盐(AOS)泡沫在不同泡沫溶液中在纳米颗粒和增粘剂(VES)存在下的稳定性。为了实现这一目标,在高达150°F的不同温度下进行了泡沫稳定性测试。在高压视室(HPVC)中对泡沫稳定性进行了研究,以寻找最佳泡沫稳定性。在150°F温度下进行了单岩心和双岩心驱油实验,研究了泡沫溶液在非均质砂岩地层中的发散能力。Boise和Berea砂岩岩心的渗透率比为10-15,初始饱和度为死油。以80%的质量注入CO2泡沫作为三次回收模式。测量了不同泡沫溶液的采收率和岩心压降。在AOS (0.5 wt%)溶液中加入尺寸为140 nm的二氧化硅纳米颗粒(0.1 wt%)和粘弹性椰油酰胺丙基甜菜碱表面活性剂(cocobetaine VES) (0.4 wt%),可以提高泡沫的稳定性。与原油接触后,泡沫层内产生不稳定的水包油微乳液,降低了泡沫的稳定性。AOS溶液形成弱泡沫,但加入纳米颗粒和VES可提高泡沫稳定性。从单岩心驱油实验来看,常规水驱油的采收率为原始油藏的47%。AOS不能提高原油采收率。AOS泡沫没有回收更多的油,然而,在纳米颗粒(19%)和VES(26%)存在的情况下,额外的油被回收。双岩心驱油实验表明,水驱二次采油时波及效率较低。在AOS泡沫体系中加入纳米颗粒和VES提高了波及效率,提高了低渗透岩心的采收率。纳米颗粒和VES能够提高AOS溶液的泡沫稳定性。强烈建议在EOR应用中添加纳米颗粒,特别是在高温下。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
An Experimental Study for the Using of Nanoparticle/VES Stabilized CO2 Foam to Improve the Sweep Efficiency in EOR Applications
CO2 foam has been used to improve the sweep efficiency for EOR as a replacement for polymers to avoid potential formation damage. Foams degrade at high temperatures (>212°F), in high-salinity environments, and in contact with crude oil. The present work evaluates nanoparticles and viscoelastic surfactants (VES) to improve foam stability when these foams are used as EOR fluid. This study investigates the stability of alpha olefin sulfonate (AOS) foam for different foam solutions in the presence of nanoparticles and viscosifiers (VES). To achieve this objective, foam stability tests were conducted at different temperatures up to 150°F. Foam stability was studied in a high-pressure view chamber (HPVC) to find the optimal. Single and dual-coreflood experiments were conducted at 150°F to investigate the divergent ability for the foam solutions on heterogonous sandstone formations. Boise and Berea sandstone cores with permeability contrast of 10-15 were saturated initially with a dead crude oil. The CO2 foam was injected with 80% quality as tertiary recovery mode. The oil recovery and the pressure drop across the core were measured for the different foam solutions. Adding silica nanoparticles (0.1 wt%) of size 140 nm and viscoelastic cocamidopropyl betaine surfactant (cocobetaine VES) (0.4 wt%) to the AOS (0.5 wt%) solution improves foam stability. In contact with crude oil, unstable oil-in-water microemulsion generated inside the foam lamella that decreased foam stability. A weak foam was formed for AOS solution, but the foam stability increased by adding nanoparticles and VES. From the single coreflood experiments, the oil recovery from the conventional water flooding 47% of the original oil-in-place. AOS was not able to enhance the oil recovery. No more oil was recovered by AOS foam, however, extra oil was recovered in the presence of nanoparticles (19 %) and VES (26%). The dual-coreflood experiments revealed low sweep efficiency during the water flooding as a secondary recovery. Adding nanoparticles and VES to the AOS foam system increased the sweep efficiency and increased the oil recovery from the low permeability cores. Nanoparticles and VES were able to improve the foam stability for AOS solution. Adding nanoparticles is highly recommended for EOR applications, particularly at high temperatures.
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