用振荡孔隙压力表征水力岩石的扩散系数

IF 2.7 3区 工程技术 Q3 ENGINEERING, CHEMICAL
Dario Sciandra, Iman R. Kivi, Roman Y. Makhnenko, Dorothee Rebscher, Víctor Vilarrasa
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引用次数: 0

摘要

为与能源有关的活动而勘探深层地质资源的兴趣正在迅速增加。为了降低与这些活动相关的风险,需要开发快速、准确的原位岩石表征方法。监测和解释周期性信号,无论是自然的还是人为的,都可以提供有价值的地下地层信息。本研究的重点是提高对封闭地层中注入引起的孔隙压力振荡的理解,并描述了使用周期信号来表征水力扩散系数的方法。我们回顾了现有的一维或轴对称几何地质地层循环孔隙压力扩散的解析解,并将其性能与数值模拟进行了比较,包括非耦合水力(H)模型和耦合水力力学(HM)模型。我们研究了三个主要应用的解决方案:(a)多孔岩石中的能量储存,(b)向具有代表性的CO2储存的盖层注入富含CO2的水,以及(c)在结晶岩石中增强地热系统的刺激。第一种情况下,波的传播范围超过千米。在第二种情况下,波的传播被限制在几十厘米内。对于最后一种情况,波的传播发生在几十米的量级上。在相同的假设下,数值解和解析解相匹配,在所有考虑的情况下误差小于3%。数值解决方案考虑了岩石的多维流体力学响应,而解析解决方案提供了问题的即时初始近似,从而实现了快速反应。这项研究强调了简化的工具如何帮助实时解释各种地下能量应用,将分析和数值方法连接起来,用于实际的地下监测和表征。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Characterization of Hydraulic Rock Diffusivity Using Oscillatory Pore Pressure

The interest of exploring deep geological resources for energy-related activities is rapidly increasing. Lowering the risks associated with these activities requires the development of fast and accurate in situ rock characterization methods. Monitoring and interpreting periodic signals, whether natural or man-induced, can provide valuable information about subsurface formations. This study focuses on improving the understanding of injection-induced pore pressure oscillations in confined formations and describes the use of periodic signals for characterizing hydraulic diffusivity. We revisit existing analytical solutions of cyclic pore pressure diffusion into geologic formations with one-dimensional or axisymmetric geometries and compare their performance with numerical simulations, including uncoupled hydraulic (H) and coupled hydro-mechanical (HM) models. We investigate the solutions in three main applications: (a) energy storage in porous rock, (b) CO₂-rich water injection into a caprock representative for CO2 storage, and (c) stimulation of an enhanced geothermal system in crystalline rock. The wave propagation extends over kilometer scales for the first case. In the second case, the wave propagation is confined to tens of centimeters. For the last case, the wave propagation occurs on the order of tens of meters. Numerical and analytical solutions match under identical assumptions, with errors of less than 3% across all the considered cases. While numerical solutions account for multidimensional hydro-mechanical rock response, analytical solutions provide an immediate initial approximation of the problem, enabling rapid reactions. This study highlights how simplified tools can aid in real-time interpretation for diverse subsurface energy applications, bridging analytical and numerical approaches for practical subsurface monitoring and characterization.

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来源期刊
Transport in Porous Media
Transport in Porous Media 工程技术-工程:化工
CiteScore
5.30
自引率
7.40%
发文量
155
审稿时长
4.2 months
期刊介绍: -Publishes original research on physical, chemical, and biological aspects of transport in porous media- Papers on porous media research may originate in various areas of physics, chemistry, biology, natural or materials science, and engineering (chemical, civil, agricultural, petroleum, environmental, electrical, and mechanical engineering)- Emphasizes theory, (numerical) modelling, laboratory work, and non-routine applications- Publishes work of a fundamental nature, of interest to a wide readership, that provides novel insight into porous media processes- Expanded in 2007 from 12 to 15 issues per year. Transport in Porous Media publishes original research on physical and chemical aspects of transport phenomena in rigid and deformable porous media. These phenomena, occurring in single and multiphase flow in porous domains, can be governed by extensive quantities such as mass of a fluid phase, mass of component of a phase, momentum, or energy. Moreover, porous medium deformations can be induced by the transport phenomena, by chemical and electro-chemical activities such as swelling, or by external loading through forces and displacements. These porous media phenomena may be studied by researchers from various areas of physics, chemistry, biology, natural or materials science, and engineering (chemical, civil, agricultural, petroleum, environmental, electrical, and mechanical engineering).
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