螯合剂 pH 值对苛刻储层条件下二氧化碳泡沫稳定性和粘度的影响

IF 5.3 2区 化学 Q2 CHEMISTRY, PHYSICAL Journal of Molecular Liquids Pub Date : 2024-08-25 DOI:10.1016/j.molliq.2024.125847
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引用次数: 0

摘要

在过去几十年中,向碳酸盐岩储层注入二氧化碳泡沫以提高石油采收率(EOR)引起了人们的特别关注;然而,人们对液态溶液化学性质在高温和高盐度条件下对泡沫稳定性的影响了解有限。因此,本文全面研究了螯合剂 L-谷氨酸-N,N-二乙酸(GLDA)的 pH 值和盐酸(HCl)对储层条件下异质碳酸盐岩形成过程中生成的二氧化碳泡沫的稳定性和粘度的影响。本文采用了 Duomeen TTM 和 Armovis VES 表面活性剂,因为这两种表面活性剂能够在苛刻条件下产生粘性 CO2 泡沫。使用高温高压(HPHT)泡沫分析仪在 100 °C 和 1000 psi 条件下研究了泡沫的可发泡性、泡沫稳定性和泡沫结构。使用 HPHT 泡沫流变仪测量了二氧化碳在 100 °C、1000 psi 和 70 % 泡沫质量条件下的泡沫粘度。流变学实验和动态光散射研究了表面活性剂的胶束大小或聚集行为。结果表明,Duomeen TTM 产生的泡沫不稳定;然而,随着 GLDA pH 值的降低,泡沫稳定性和可发泡性得到改善。阿乐斯 VES 表现出优异的二氧化碳泡沫性能,阿乐斯 VES 系统的泡沫半衰期为 240 分钟。由于粘弹性液相的形成,液体排出和气泡变粗的时间被推迟。随着 GLDA pH 值的降低,Armovis VES 的发泡性也得到了改善。此外,在阿乐斯 VES 溶液中加入 HCl 时,泡沫性最高。HPHT 泡沫分析仪和 HPHT 粘度计的结果证明,随着阿乐斯 VES 溶液 pH 值的降低,可产生更高的泡沫。在 0.5 wt% Duomeen TTM 和 0.5 wt% Armovis VES 的协同作用下,泡沫粘度最高(100/s 时为 39 cp)。相比之下,1 wt% Armovis VES 的泡沫粘度最低(100/s 时为 30 cp)。这项研究成果有助于深入了解化学对二氧化碳泡沫的影响,并扩大其在油田开发中的应用。这项工作拓宽了新型 CO2 泡沫配方的设计范围,从而提高了 CO2-EOR 方法中的清扫效率,并增强了碳封存中的气体截留。
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The impact of chelating agent pH on the stability and viscosity of CO2 foam under harsh reservoir conditions

The injection of CO2 foam into the carbonate reservoir for enhanced oil recovery (EOR) has attracted special interest in the last decades; nevertheless, the understanding of the effect of liquid solution chemistry on foam stability at high temperatures and salinities is limited. Hence, this paper fully investigates the effect of chelating agents L-glutamic acid-N, N-diacetic acid (GLDA) pH, and hydrochloric acid (HCl) on the stability and viscosity of generated CO2 foam for heterogeneous carbonate formation under reservoir conditions. In this paper, Duomeen TTM and Armovis VES surfactants were utilized due to their capabilities to produce viscous CO2 foam under harsh conditions. The foamability, foam stability, and foam structure were studied at 100 °C and 1000 psi using a high-temperature and high-pressure (HPHT) foam analyzer. The measurement of CO2 foam viscosity was determined at 100 °C, 1000 psi, and 70 % foam quality using the HPHT foam rheometer. Rheology experiments and dynamic light scattering investigated the micelle’s size or aggregation behavior of surfactants. The obtained results showed that the Duomeen TTM generated unstable foam; however, foam stability and foamability improved with the decrease in GLDA pH. Armovis VES showed excellent CO2 foam performance, where the foam half-life time of Armovis VES systems was 240 min. The liquid drainage and bubble coarsening were delayed due to the formation of the viscoelastic liquid phase. The foamability of Armovis VES was improved as the GLDA pH decreased. Furthermore, the addition of HCl to Armovis VES solution presented the highest foamability. The outcomes of the HPHT foam analyzer and HPHT viscometer proved that as the pH of Armovis VES solution decreased, higher foamability was produced. The highest foam viscosity was obtained using the synergic effect of 0.5 wt% Duomeen TTM and 0.5 wt% Armovis VES (39 cp at 100/s). In comparison, 1 wt% Armovis VES presented the lowest foam viscosity (30 cp at 100/s). The outcomes of this research can provide insight into the effect of chemistry on CO2 foam and extend its application in oilfield development. This work broadens the design of novel CO2 foam formulation, leading to the improvement of sweep efficiency in CO2-EOR methods and enhance the gas trapping in carbon storage.

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来源期刊
Journal of Molecular Liquids
Journal of Molecular Liquids 化学-物理:原子、分子和化学物理
CiteScore
10.30
自引率
16.70%
发文量
2597
审稿时长
78 days
期刊介绍: The journal includes papers in the following areas: – Simple organic liquids and mixtures – Ionic liquids – Surfactant solutions (including micelles and vesicles) and liquid interfaces – Colloidal solutions and nanoparticles – Thermotropic and lyotropic liquid crystals – Ferrofluids – Water, aqueous solutions and other hydrogen-bonded liquids – Lubricants, polymer solutions and melts – Molten metals and salts – Phase transitions and critical phenomena in liquids and confined fluids – Self assembly in complex liquids.– Biomolecules in solution The emphasis is on the molecular (or microscopic) understanding of particular liquids or liquid systems, especially concerning structure, dynamics and intermolecular forces. The experimental techniques used may include: – Conventional spectroscopy (mid-IR and far-IR, Raman, NMR, etc.) – Non-linear optics and time resolved spectroscopy (psec, fsec, asec, ISRS, etc.) – Light scattering (Rayleigh, Brillouin, PCS, etc.) – Dielectric relaxation – X-ray and neutron scattering and diffraction. Experimental studies, computer simulations (MD or MC) and analytical theory will be considered for publication; papers just reporting experimental results that do not contribute to the understanding of the fundamentals of molecular and ionic liquids will not be accepted. Only papers of a non-routine nature and advancing the field will be considered for publication.
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