A Novel Foamed Acid System Stabilized by Composite Material for Fracturing Applications

Abeer A. Alarawi, Bader Al Harbi, A. Busaleh
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Abstract

Carbonate reservoirs hold 60% of the world's oil and 40% of the gas. Therefore, developing high-impact and innovative technologies for well stimulation, such as foamed acid fracturing fluids, is essential for restoring well productivity and enhancing commercial productivity for carbonate reservoirs. Acid fracturing treatment is associated with reactivity control, fluid loss control, and conductivity generation challenges. For overcoming some drawbacks associated with conventional acid fracturing, foamed acid fluid is applied to enhance retardation, reduce water consumption, improve acid diversion, remove water or emulsion blocks, and improve conductivity generation. In this study, a unique foamed acid system stabilized by composite material was studied to develop fracturing fluid at 275-350 °F. In addition, the foam stability, rheology, and morphology characteristics were investigated using several characterization tools at 275-350 °F. The composite material comprises nanosheet (NS), and surfactant (SURF) were added to either a pure-acid or acid system that contains several additives for developing stable NS/SURF-based foamed acid fluid. To evaluate foam rheological properties and thermal stability at dynamic conditions, foam loop rheometer experiments were conducted at 275-350 °F, 1050 psi, and 70 % N2 quality. A high-resolution optical microscope was also utilized to observe foam texture morphology and further assess foam stability. In addition, foam-decaying time was observed by determining the foam-half-life-time (foam volume altering as a function of time). The static and dynamic results illustrated that foamed acid fluid stability and thermal adaptability were improved after adding composite material at 275-350 °F. The viscosity of foamed acid increased by double and its viscosity was higher than 45 cP at a shear rate of 300 S-1 and 350 °F. In addition, the foam-structure of NS/SURF-based foamed acid displayed a small hexagonal bubbles size, which positively affected the stability of foam to reach up to three hours at 300 °F. In contrast, the stability of pure foamed acid was one hour. This result is attributed to the adsorption of composite material at the liquid-gas interface layer that enhances the mechanical strength of the foam-layer (lamellae film) and provides a more robust barrier between the gas bubbles and liquid phase, resulting in delaying the coalescence of the bubbles. The developed NS/SURF-based foamed acid possesses several advantages over the conventional acid fracturing fluids: long stability, adequate viscosity (obtained without adding gelling agent), low water consumption, and high efficiency at 275-350 °F.
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一种新型复合材料稳定泡沫酸体系用于压裂
碳酸盐岩储层蕴藏着世界上60%的石油和40%的天然气。因此,开发高效创新的增产技术,如泡沫酸压裂液,对于恢复油井产能和提高碳酸盐岩储层的商业产能至关重要。酸压裂处理与反应性控制、失液控制和导流能力产生相关。为了克服常规酸压裂的一些缺点,采用了泡沫酸液,以增强缓凝,减少用水量,改善酸分流,去除水或乳液块,并提高导流能力。在这项研究中,研究了一种由复合材料稳定的独特泡沫酸体系,以在275-350°F的温度下开发压裂液。此外,在275-350°F的温度下,使用几种表征工具研究了泡沫的稳定性、流变性和形态特征。复合材料由纳米片(NS)和表面活性剂(SURF)组成,分别添加到纯酸或含有多种添加剂的酸体系中,以制备稳定的NS/SURF基泡沫酸液。为了评估泡沫在动态条件下的流变特性和热稳定性,在275-350°F、1050 psi和70%氮气质量下进行了泡沫环流变仪实验。利用高分辨率光学显微镜观察泡沫织构形态,进一步评价泡沫稳定性。此外,通过测定泡沫半衰期(泡沫体积随时间的变化)来观察泡沫的衰减时间。静态和动态结果表明,在275 ~ 350°F温度下,复合材料的加入改善了泡沫酸流体的稳定性和热适应性。在剪切速率为300 S-1和350°F的条件下,泡沫酸的粘度增加了一倍,粘度大于45 cP。此外,NS/ surf基泡沫酸的泡沫结构呈现小的六边形气泡尺寸,这对泡沫在300°F下长达3小时的稳定性有积极影响。而纯泡沫酸的稳定性为1小时。这一结果归因于复合材料在液气界面层的吸附,增强了泡沫层(片层膜)的机械强度,并在气泡和液相之间提供了更坚固的屏障,从而延迟了气泡的聚并。与传统的酸性压裂液相比,所开发的NS/ surf泡沫酸具有以下优点:稳定性长、粘度充足(无需添加胶凝剂即可获得)、耗水量低、在275-350°F时效率高。
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