利用水力-纹理-质地模型模拟结晶岩中水力压裂与原有微裂缝之间的相互作用

0 ENERGY & FUELS
Suifeng Wang , Yanhui Han , Wanrui Hu , Xianyu Zhao , Liping Zhang , Tao Wang
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引用次数: 0

摘要

矿物颗粒的异质性和预先存在的微裂缝对结晶岩的开裂行为有很大影响。然而,现有的水力压裂研究并未充分考虑到这些特性。为了弥补这一不足,本研究引入了一种流固耦合方法,并通过微裂缝模拟组件(即水力-晶粒-纹理模型,Hydro-Grain-Texture Model,HGTM)来研究矿物结构和已存在的微裂缝对花岗岩水力压裂过程的影响。与现有方法相比,HGTM 采用了 "晶粒生长 "算法,可以更准确地表示矿物晶粒的特征。本研究调查了在静水和非静水原位应力条件下完整岩石的基本情况,以及以不同方向的微裂缝(即水平、对角、垂直和复杂微裂缝)为特征的另外四种情况。HGTM 能有效捕捉花岗岩水力压裂过程中的一系列微观行为,包括岩石碎片、裂缝分支和干裂缝等的形成。此外,通过比较击穿压力的数值结果与分析结果,证实了 HGTM 预测击穿压力的准确性。研究结果表明,矿物结构(晶界)和微裂缝有助于形成更复杂的水力裂缝扩展模式。预先存在的微裂缝对原生水力裂缝的传播路径有很大影响。在流体驱动的压力下,这些预先存在的微裂缝会发生剪切破坏,这与在周围岩石基质中观察到的拉伸破坏不同。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling interactions between hydraulic fracture and pre-existing microcracks in crystalline rocks using hydro-grain-texture model
The heterogeneity of the mineral grains and pre-existing microcracks significantly impacts the cracking behavior of crystalline rocks. However, these characteristics have not been adequately addressed in the existing hydraulic fracturing studies. To bridge this gap, this study introduces a fluid-solid coupling method enhanced by a microcrack simulation component, called Hydro-Grain-Texture Model (HGTM), to investigate the influence of mineral structures and pre-existing microcracks on hydraulic fracturing processes in granite. Compared with existing methods, the HGTM incorporates a “grain growth” algorithm that can more accurately represent the characteristics of mineral grains. This study investigates the base case of intact rock, and four additional cases featuring microcracks oriented in various directions, i.e., horizontal, diagonal, vertical and complex microcracks, under both hydrostatic and non-hydrostatic in-situ stress conditions. The HGTM effectively captures a range of microscopic behaviors during the hydraulic fracturing of granite, including the formation of rock fragments, fracture branches, and dry fractures, among others. Furthermore, by comparing numerical results for breakdown pressure with analytical results, the accuracy of the HGTM in predicting breakdown pressure is substantiated. The findings indicate that mineral structures (grain boundaries) and microcracks contribute to a more intricate pattern of hydraulic fractures propagation. The pre-existing microcracks significantly influence the propagation path of primary hydraulic fractures. Under fluid-driven pressures, these pre-existing microcracks experience shear failure distinct from tensile failure observed in the surrounding rock matrix.
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