包括煤层气储层临界应力裂缝分析在内的流体流动建模程序:以波兰上西里西亚煤盆地为例

IF 0.4 Q4 ENVIRONMENTAL SCIENCES
M. Kępiński, Paweł Ryder, J. Dudek, D. Podsobiński
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引用次数: 0

摘要

地质力学建模是油气勘探的重要组成部分,有助于降低钻井问题的风险,优化水力压裂处理。本研究提供了一套针对煤层的临界应力裂缝(CSF)分析流程。本文的主要重点是应用一维力学模型和后续水力压裂处理建模来描述井筒尺度下应力影响下的裂缝行为。本研究的另一个目的是证明1D和3D CSF分析的好处,以了解煤层压裂后裂缝对获得的碳氢化合物体积的贡献。裂缝定向及其行为的解释对于煤层气资源的有效开发至关重要,因为CSF可以负责相当一部分煤层气的生产。天然裂缝和断层有助于流体穿过岩石。人们经常注意到,天然裂缝在环境应力状态下可能没有临界应力。然而,在增产过程中,最优定向的天然裂缝组有变得临界应力的倾向。因此,了解近期应力状态和裂缝方向对井规划和压裂设计具有重要意义。该研究的结果是为分析井建立了综合的一维力学地球模型(MEMs),并解释了所识别的CSF在变应力状态下的行为,以及对压裂层内天然裂缝连通性的理解。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The fluid flow modeling procedure including a critically stressed fracture analysis of coalbed methane reservoir: a case study of Upper Silesian Coal Basin, Poland
The geomechanical modeling turned out to be an essential component of the hydrocarbon exploration assisting reduction of risk of drilling issues and optimization of hydraulic fracturing treatment. This study provides a workflow of critically stressed fracture (CSF) analysis dedicated for coal layers. The main focus of the paper is applying the 1D mechanical models and following modelling of hydraulic fracturing treatment to describe the fracture behavior under the impact of the stresses at the wellbore scale. Another objective of the presented study is demonstration of benefits of 1D and 3D CSF analysis to understand fracture contribution to gained volume of hydrocarbon after fracturing of coal seam. Interpretation of fracture orientation and their behavior is vital to effective development of coal bed methane (CBM) resources as the CSF can be responsible for considerable part of CBM production. Natural fractures and faults contribute to fluid flow through rock. It is often noted that natural fractures may not be critically stressed at ambient stress state. However, during stimulation, the optimally oriented natural fracture sets have the inclination to become critically stressed. Hence, understanding of the recent stress state and fracture orientations is significant for well planning and fracturing design. The outcome of this study are comprehensive 1D mechanical Earth models (MEMs) for analyzed wells and explanation of behavior of identified CSF under variable stress state as well as understanding of the connectivity of natural fractures within zone subjected to fracturing treatment.
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