Experimental Research on the Proppant Settling and Transport Characteristics of Silica Gel-Based Fracturing Fluid

IF 3.2 3区 工程技术 Q1 ENGINEERING, PETROLEUM SPE Journal Pub Date : 2023-11-01 DOI:10.2118/218381-pa
Hang Xu, Fujian Zhou, Hao Wu, Sasa Yang, Yuan Li, Yang Wang, Hao Bai, Erdong Yao, Hualei Xu
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Abstract

Hydraulic fracturing is an effective stimulation method to establish high-conductivity channels in tight reservoirs, and the effectiveness of man-made fractures largely depends on the proppant-carrying capacity of the fracturing fluids used. As a novel completion fluid, silica gel-based fracturing fluids have shown desirable stimulation effect in application cases, but a comprehensive evaluation of their proppant settling and transport behaviors in the laboratory remains lacking. In this paper, a silica gel-based fracturing fluid was prepared first, and then the rheological properties, including shear thinning, recovery behavior, and viscoelasticity of the fluid system, were measured. Afterward, the settling velocity of single-particle proppant and the settling rate of multiparticle proppant under various experimental conditions were investigated in the static fluid system; in addition, the dynamic proppant-carrying performance was evaluated using a visualized rough fracture model to study different factors on the dune distribution inside the fractures. Lastly, the proppant-carrying mechanism of silica gel-based fracturing fluid was revealed in three aspects. The rheological test result showed that the shear viscosity of silica gel-based fracturing fluid increased as the SiO2 concentration increased. Furthermore, all tested fluid samples exhibited an elastic modulus that is consistently greater than the viscous modulus, indicating that the silica gel-based fracturing fluid system has a dominant elastic response behavior. In the single-particle static settling test, there was a significant increase in the settling velocities as the particle diameter increased and as the temperature increased. Meanwhile, the settling rate of multiparticles showed a decreasing trend with the increase in mesh size, while the proppant settling rate gradually increased as the proppant concentration rose. The results of dynamic proppant-carrying experiments demonstrate that a higher pumping rate leads to an extended migration distance for proppant, resulting in formed sand dunes with reduced height within fractures. Conversely, an increase in proppant concentration and a reduction in mesh size tend to form higher sand dunes. The proppant-carrying mechanisms of the silica gel-based fracturing fluid relate to the self-polymerization and syneresis of silica gel, the noticeable elasticity characteristics, and the structural encapsulation effect formed between silica gel and proppant. A better understanding of the proppant settling and transport behaviors of silica gel-based fracturing fluid can be helpful in optimizing the hydraulic fracturing design and promoting field application.
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硅胶压裂液支撑剂沉降和迁移特性的实验研究
水力压裂是在致密储层中建立高导通道的有效刺激方法,而人造裂缝的有效性在很大程度上取决于所用压裂液的支撑剂携带能力。硅凝胶基压裂液作为一种新型完井液,在应用案例中显示出了理想的致裂效果,但对其支撑剂沉降和输送行为的实验室综合评价仍然缺乏。本文首先制备了硅凝胶基压裂液,然后测量了流变特性,包括流体体系的剪切稀化、恢复行为和粘弹性。随后,研究了静态流体体系在不同实验条件下单颗粒支撑剂的沉降速度和多颗粒支撑剂的沉降速度;此外,还利用可视化粗糙裂缝模型评估了动态支撑剂携带性能,研究了裂缝内部沙丘分布的不同因素。最后,从三个方面揭示了硅胶基压裂液的支撑剂携带机理。流变测试结果表明,硅胶基压裂液的剪切粘度随着二氧化硅浓度的增加而增加。此外,所有测试流体样品的弹性模量均大于粘性模量,表明硅胶基压裂液体系具有主要的弹性响应行为。在单颗粒静态沉降试验中,随着颗粒直径的增加和温度的升高,沉降速度显著增加。同时,多颗粒的沉降速度随着网孔尺寸的增大呈下降趋势,而支撑剂的沉降速度则随着支撑剂浓度的增加而逐渐增大。动态支撑剂携带实验结果表明,较高的泵送速率会延长支撑剂的迁移距离,从而在裂缝内形成高度降低的沙丘。相反,提高支撑剂浓度和减小网眼尺寸往往会形成更高的沙丘。硅凝胶基压裂液的支撑剂携带机理与硅凝胶的自聚合和滞后、明显的弹性特征以及硅凝胶和支撑剂之间形成的结构封装效应有关。更好地了解硅凝胶基压裂液的支撑剂沉降和输送行为有助于优化水力压裂设计和促进现场应用。
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来源期刊
SPE Journal
SPE Journal 工程技术-工程:石油
CiteScore
7.20
自引率
11.10%
发文量
229
审稿时长
4.5 months
期刊介绍: Covers theories and emerging concepts spanning all aspects of engineering for oil and gas exploration and production, including reservoir characterization, multiphase flow, drilling dynamics, well architecture, gas well deliverability, numerical simulation, enhanced oil recovery, CO2 sequestration, and benchmarking and performance indicators.
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