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用于石油和天然气工业压裂液的高分子凝胶的化学和物理结构;现状、挑战与前景

Chemical and Physical Architecture of Macromolecular Gels for Fracturing Fluid Applications in the Oil and Gas Industry; Current Status, Challenges, and Prospects.

作者信息

Khan Majad

机构信息

Department of Chemistry, King Fahd University of Petroleum & Minerals (KFUPM), Dhahran 31261, Saudi Arabia.

Interdisciplinary Research Center for Hydrogen Technologies and Energy Storage (IRC-HTCM), King Fahd University of Petroleum & Minerals (KFUPM), Dhahran 31261, Saudi Arabia.

出版信息

Gels. 2024 May 16;10(5):338. doi: 10.3390/gels10050338.

DOI:10.3390/gels10050338
PMID:38786255
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11121287/
Abstract

Hydraulic fracturing is vital in recovering hydrocarbons from oil and gas reservoirs. It involves injecting a fluid under high pressure into reservoir rock. A significant part of fracturing fluids is the addition of polymers that become gels or gel-like under reservoir conditions. Polymers are employed as viscosifiers and friction reducers to provide proppants in fracturing fluids as a transport medium. There are numerous systems for fracturing fluids based on macromolecules. The employment of natural and man-made linear polymers, and also, to a lesser extent, synthetic hyperbranched polymers, as additives in fracturing fluids in the past one to two decades has shown great promise in enhancing the stability of fracturing fluids under various challenging reservoir conditions. Modern innovations demonstrate the importance of developing chemical structures and properties to improve performance. Key challenges include maintaining viscosity under reservoir conditions and achieving suitable shear-thinning behavior. The physical architecture of macromolecules and novel crosslinking processes are essential in addressing these issues. The effect of macromolecule interactions on reservoir conditions is very critical in regard to efficient fluid qualities and successful fracturing operations. In future, there is the potential for ongoing studies to produce specialized macromolecular solutions for increased efficiency and sustainability in oil and gas applications.

摘要

水力压裂对于从油气藏中开采碳氢化合物至关重要。它涉及在高压下将流体注入储层岩石。压裂液的一个重要组成部分是添加聚合物,这些聚合物在储层条件下会变成凝胶或类似凝胶的物质。聚合物被用作增稠剂和减阻剂,以便在压裂液中提供支撑剂作为输送介质。基于大分子的压裂液体系众多。在过去一到二十年中,使用天然和人造线性聚合物,以及在较小程度上使用合成超支化聚合物作为压裂液添加剂,在增强各种具有挑战性的储层条件下压裂液的稳定性方面显示出巨大潜力。现代创新表明开发化学结构和性能以提高性能的重要性。关键挑战包括在储层条件下保持粘度以及实现合适的剪切变稀行为。大分子的物理结构和新型交联过程对于解决这些问题至关重要。大分子相互作用对储层条件的影响对于高效的流体质量和成功的压裂作业非常关键。未来,持续的研究有可能产生专门的大分子解决方案,以提高油气应用的效率和可持续性。

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