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首页> 外文期刊>Arabian journal of geosciences >A novel binary compound flooding system based on DPG particles for enhancing oil recovery
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A novel binary compound flooding system based on DPG particles for enhancing oil recovery

机译:一种基于DPG颗粒的新型二元复合洪水系统,提高油回收

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摘要

Aiming at deep profile control in water flooding reservoirs, a heterogeneous combination flooding system, composed of dispersed particle gel (DPG) and a zwitterionic surfactant (THSB), was developed. The mean particle diameter was adjusted and then the DPG morphology and diameter were characterized using a laser scanning, confocal microscope, and dynamic light scattering. The effects of DPG concentration, temperature, pH, and salinity on THSB interfacial tension (IFT) were investigated. A method for determining DPG concentration was proposed, and the dynamic retention and migration mechanisms of the particles were evaluated, using cores with different permeabilities. Finally, the oil displacement mechanism of the combination flooding system was explored through visual simulation experiments and scanning electron microscopy. The results showed that the particle diameter was 2.5m, that compared with a surfactant system, the IFT of the combination flooding system was relatively low, and that the temperature, pH, and NaCl content of solutions had little effect on THSB IFT. Since specific matching relationships between DPG particles and reservoir pore throats existed, the retention amount and injection pressure were improved with the increased core permeability. Visual simulation experiments revealed the oil recovery mechanism of the combination flooding system. This combination flooding system can be used in reservoirs under varied conditions, as the particle diameter can be adjusted on a case-by-case basis, and the THSB surfactant proved to be high-temperature resistant and high-salinity tolerant. The combination flooding system can be applied to deep profile control and oil displacement, in oil fields.
机译:旨在施加漏水储层中的深层轮廓控制,开发了一种由分散颗粒凝胶(DPG)和两性离子表面活性剂(THSB)组成的异构组合泛滥系统。调节平均粒径,然后使用激光扫描,共聚焦显微镜和动态光散射表征DPG形态和直径。研究了DPG浓度,温度,pH和盐度对THSB界面张力(IFT)的影响。提出了一种确定DPG浓度的方法,并使用具有不同渗透率的核来评价颗粒的动态保留和迁移机制。最后,通过视觉模拟实验和扫描电子显微镜探索了组合泛洪系统的油位移机理。结果表明,粒径为2.5M,与表面活性剂体系相比,组合洪水系统的IFT相对较低,溶液的温度,pH和NaCl含量没有对THSB IFT的影响很小。由于存在DPG颗粒和贮存器孔喉之间的具体匹配关系,因此随着核心渗透率的增加而改善了保持量和注射压力。视觉仿真实验揭示了组合洪水系统的储油机制。这种组合泛洪系统可用于变化条件下的储层,因为可以在逐壳的基础上调节粒径,并且THSB表面活性剂被证明是耐高温和高盐度的耐受性。组合洪水系统可以应用于油田的深层轮廓控制和油位移。

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