水力压裂过程中流体特性的深入研究

IF 2.8 3区 工程技术 Q1 MATHEMATICS, INTERDISCIPLINARY APPLICATIONS
Rezvan Abdi, Marek Krzaczek, Meisam Abdi
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引用次数: 0

摘要

本文建立了水基水力压裂裂缝扩展的数值模型。为了解决与数值模型相关的计算挑战,提出的方法采用一组重叠的球体排列在单层中,以构建包含预先存在裂缝的多孔试样。充液裂缝代表了流体驱动裂缝萌生和扩展的不同阶段。在等温条件下考虑高压流体在裂缝内的流动。与传统的岩石裂缝分析不同,该方法侧重于裂缝扩展过程中的流动特征。本研究的主要目的是提供水力压裂过程中裂缝扩展的计算流体力学(CFD)方面的详细描述,以帮助校准和验证简化离散元方法(DEM)模型与代表这一现象的CFD相结合。在先前的研究中进行的实验验证支持了该模型的可靠性,使其特别适用于由一层球体构建的耦合二维DEM-CFD模型的校准和验证。获得此类案例的实验数据具有实际挑战性,而所提出的模型解决了水力压裂缺乏可靠实验数据的问题。为此,设计了具有代表性的样品,进行了精确的模拟,并对结果进行了精确的评估。测量了密度、压力、速度、孔隙度和渗透率等关键变量,以方便未来DEM-CFD研究的验证和校准。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Insights into the flow characteristics during hydraulic fracturing

This paper presents a numerical model to study fracture propagation during water-based hydraulic fracturing. To address the computational challenges associated with the numerical model, the proposed approach employs a set of overlapping spheres arranged in a monolayer to construct a porous specimen containing pre-existing cracks. The fluid-filled cracks represent various stages of initiation and propagation of fluid-driven fracture. The high-pressure fluid flow within the fractures is considered under isothermal conditions. Unlike the conventional focus on rock fracture analysis, the presented approach focuses on flow characteristics during fracture growth. The main objective of the presented study is to provide a detailed description of the computational fluid dynamics (CFD) aspects of fracture propagation during hydraulic fracturing to aid in calibration and validation of simplified discrete element method (DEM) models coupled with CFD representing this phenomenon. Experimental validations performed in previous studies support the model's reliability, making it useful in particular for calibration and validation of coupled 2D DEM-CFD models constructed from one layer of spheres. Obtaining experimental data for such cases is practically challenging, and the proposed model addresses the lack of reliable experimental data for hydraulic fracturing. To achieve this, representative specimens are designed, accurate simulations are conducted and precise assessments of the results are performed. Key variables such as density, pressure, velocity, porosity, and permeability were measured to facilitate the validation and calibration of future DEM-CFD studies.

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来源期刊
Computational Particle Mechanics
Computational Particle Mechanics Mathematics-Computational Mathematics
CiteScore
5.70
自引率
9.10%
发文量
75
期刊介绍: GENERAL OBJECTIVES: Computational Particle Mechanics (CPM) is a quarterly journal with the goal of publishing full-length original articles addressing the modeling and simulation of systems involving particles and particle methods. The goal is to enhance communication among researchers in the applied sciences who use "particles'''' in one form or another in their research. SPECIFIC OBJECTIVES: Particle-based materials and numerical methods have become wide-spread in the natural and applied sciences, engineering, biology. The term "particle methods/mechanics'''' has now come to imply several different things to researchers in the 21st century, including: (a) Particles as a physical unit in granular media, particulate flows, plasmas, swarms, etc., (b) Particles representing material phases in continua at the meso-, micro-and nano-scale and (c) Particles as a discretization unit in continua and discontinua in numerical methods such as Discrete Element Methods (DEM), Particle Finite Element Methods (PFEM), Molecular Dynamics (MD), and Smoothed Particle Hydrodynamics (SPH), to name a few.
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