Enhancing Fracturing Proppant Performance: Methods and Assessment

IF 2.6 4区 综合性期刊 Q2 MULTIDISCIPLINARY SCIENCES
Vahid Ramazanov, Stewart Matovu, Talal Al Shafloot, Sulaiman A. Alarifi
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引用次数: 0

Abstract

The use of fracturing proppants is a key element of hydraulic fracturing operations in the oil and gas industry. The selection of proppants with superior performance is critical to ensure efficient and effective hydraulic fracturing. Proppant technologies are developing rapidly. Therefore, standardization of proppant evaluation is necessary to ensure accurate proppant evaluation during proppant production. Although the API and ISO have released a number of recommended practices for this purpose, there are still significant gaps in them. This is because several hypotheses regarding proppant performance, including proppant embedment and diagenesis, and their influence on proppant conductivity, are still not fully clear. Numerous proppants have been produced within the petroleum industry, featuring diverse compositions, sizes, shapes, and intended uses. While many proppants consist of silica or ceramics, there is growing interest in advanced types such as ultra-lightweight proppants. These innovations aim to minimize settling and enable transport using low-viscosity fluids. Moreover, to reduce expenditures, it is common practice in hybrid completions to mix proppant of different sizes according to stimulation design objectives and assumptions. Proppant can be equally mixed, separated by tail-in, or mixed with dominating concentrations of a specific size, depending on the type of fluids, viscosity, and anticipated settlement velocity. Surface modification involves altering the surface properties of the proppant to improve its adhesion to the fracture face and to reduce embedment and fines generation. Surface modification techniques include silane treatment, plasma treatment, and chemical treatment. The method can maintain oil flow channels after the hydraulic fracturing operation for a very long time. Proppant flowback, fines generation, and gel degradation are the key factors that contribute to a proppant pack losing permeability. Proppant pack conductivity can be increased, and well cleanup can be hastened, with the aid of a surface modification. This review paper aims to provide a comprehensive overview of proppant and its types, proppant performance assessment, and methods to enhance proppant performance. We discuss various techniques to evaluate proppant performance, including crush resistance, conductivity, embedment, and closure stress. Additionally, we highlight the importance of selecting the most appropriate proppant type for a particular well based on the formation properties and proppant characteristics. Furthermore, we explore recent advancements in proppant enhancement methods, such as coating, sintering, altering proppant surface, and consolidation, and their effectiveness in improving proppant performance. The comprehensive review provides insight into current industry practices and highlights potential areas for future research to improve fracturing proppant performance.

提高压裂支撑剂性能:方法与评价
压裂支撑剂的使用是油气行业水力压裂作业的关键因素。选择性能优良的支撑剂是确保高效水力压裂的关键。支撑剂技术正在迅速发展。因此,为了保证支撑剂生产过程中支撑剂评价的准确性,有必要对支撑剂评价进行标准化。尽管API和ISO已经为此目的发布了许多推荐的实践,但其中仍然存在重大差距。这是因为关于支撑剂性能的几个假设,包括支撑剂的嵌入和成岩作用,以及它们对支撑剂导流能力的影响,仍然不完全清楚。石油工业中已经生产了许多支撑剂,具有不同的成分、尺寸、形状和预期用途。虽然许多支撑剂由二氧化硅或陶瓷组成,但人们对超轻质支撑剂等先进类型的兴趣越来越大。这些创新旨在最大限度地减少沉淀,并使用低粘度流体进行输送。此外,为了降低成本,混合完井的常见做法是根据增产设计目标和假设混合不同尺寸的支撑剂。根据流体类型、粘度和预期沉降速度的不同,支撑剂可以均匀混合,通过尾入分离,也可以与特定尺寸的主要浓度混合。表面改性包括改变支撑剂的表面特性,以改善其与裂缝面的粘附性,减少嵌入和细颗粒的产生。表面改性技术包括硅烷处理、等离子体处理和化学处理。该方法可以在水力压裂作业后很长时间保持油流通道。支撑剂返排、细粒生成和凝胶降解是导致支撑剂充填层失去渗透率的关键因素。在表面改性的帮助下,支撑剂充填层的导电性可以提高,井的清理速度可以加快。本文旨在全面介绍支撑剂及其类型、支撑剂性能评价以及提高支撑剂性能的方法。我们讨论了评估支撑剂性能的各种技术,包括抗压性、导电性、嵌入性和闭合应力。此外,我们强调了根据地层性质和支撑剂特性为特定井选择最合适的支撑剂类型的重要性。此外,我们还探讨了支撑剂增强方法的最新进展,如涂层、烧结、改变支撑剂表面和固结,以及它们在提高支撑剂性能方面的有效性。全面的综述提供了对当前行业实践的见解,并强调了未来研究的潜在领域,以提高压裂支撑剂的性能。
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来源期刊
Arabian Journal for Science and Engineering
Arabian Journal for Science and Engineering MULTIDISCIPLINARY SCIENCES-
CiteScore
5.70
自引率
3.40%
发文量
993
期刊介绍: King Fahd University of Petroleum & Minerals (KFUPM) partnered with Springer to publish the Arabian Journal for Science and Engineering (AJSE). AJSE, which has been published by KFUPM since 1975, is a recognized national, regional and international journal that provides a great opportunity for the dissemination of research advances from the Kingdom of Saudi Arabia, MENA and the world.
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