聚醚胺/纳米流体系统的协同乳化作为酸性原油的新型降粘剂

IF 1.3 4区 材料科学 Q4 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials Science-Poland Pub Date : 2024-03-27 DOI:10.2478/msp-2023-0049
Yang Cao, Yanlin Guo, Tao Wu, Dejun Sun
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引用次数: 0

摘要

石油是能源和工业的重要原材料,随着常规石油储量的枯竭,必须高效开采和生产酸性原油等非常规资源。然而,其高粘度给运输和加工带来了巨大挑战。为应对这些挑战,本研究开发了一种新型乳液降粘剂。我们设计了一种基于协同聚醚胺/纳米流体系统的纳米流体,该系统由作为绿色表面活性剂的烷基乙氧基多糖苷(AEG)、二氧化硅纳米粒子和有机碱聚醚胺组成。对该混合物与胜利油田清河采油厂酸性原油的降粘和乳化性能进行了评价。结果表明,优化后的降粘剂在 50◦C 温度下可将原油粘度从 6862 mPa-s 降至 129 mPa-s,降粘率高达 98.1%。这表明该降粘剂能有效地将酸性原油转化为低粘度、高稳定性的水包油(O/W)乳液。此外,岩心浸润模拟试验表明,降粘剂可将酸性原油的采收率从 29.6% 提高到 49.4%,这表明优化后的降粘剂在酸性原油开采中具有潜在的应用价值。总之,本研究开发了一种新型乳液降粘剂,通过乳化成 O/W 型乳液,可降低酸性原油的粘度并提高其采收率。优化配方在酸性原油开采中具有实际应用潜力。
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Synergistic emulsification of polyetheramine/nanofluid system as a novel viscosity reducer of acidic crude oil
Oil is a critical raw material for energy and industry, the depletion of conventional oil reserves necessitates efficient extraction and production of unconventional resources like acidic crude oil. However, its high viscosity poses significant challenges for transportation and processing. To address these challenges, this study developed a novel emulsion viscosity reducer. We designed a nanofluid based on a synergistic polyetheramine/nanofluid system consisting of alkyl ethoxy polyglycosides (AEG) as a green surfactant, SiO2 nanoparticles, and an organic alkali polyetheramine. The mixture was evaluated for its viscosity reduction and emulsification performance with acidic crude oi obtained from Qinghe oil production plant in Shengli Oilfield. The results showed that the optimized viscosity reducer achieved a remarkable reduction rate of 98.1% at 50◦C in crude oil viscosity from 6862 mPa·s to 129 mPa·s. This demonstrated the reducer effectively transformed acidic crude oil into a low viscosity oil-in-water (O/W) emulsion with high stability. Furthermore, the core imbibition simulation tests demonstrated that the viscosity reducer could improve the recovery of acidic crude oil from 29.6% to 49.4%, indicating the potential application of the optimized viscosity reducer in the exploitation of acidic crude oil. In conclusion, this study developed a novel emulsion viscosity reducer, which can reduce the viscosity and improve recovery of acidic crude oil by emulsifying into O/W emulsion. The optimized formula has potential for practical application in the exploitation of acidic crude oil.
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来源期刊
Materials Science-Poland
Materials Science-Poland MATERIALS SCIENCE, MULTIDISCIPLINARY-
自引率
18.20%
发文量
18
期刊介绍: Material Sciences-Poland is an interdisciplinary journal devoted to experimental research into results on the relationships between structure, processing, properties, technology, and uses of materials. Original research articles and review can be only submitted.
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