粗糙度、孔径和分形特征对岩石断裂网络等效渗透率和非线性流动行为的综合影响

Mingkai Zhao, Desen Kong, Sen Teng, Jian Shi
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引用次数: 0

摘要

断裂岩体的水力特性主要由相连的断裂网络控制。全面了解断裂网络中的物理流动过程对于评估岩体的输送能力至关重要。然而,断裂表面粗糙度形态、断裂分布特征和流体流动机制对断裂网络的流动能力有很大影响。为此,利用分形理论量化了断裂表面的粗糙地形特征,然后根据单一断裂中可能出现的层流和紊流,建立了粗糙断裂网络在不同流态下的有效渗透率模型和非线性渗流效应评估模型。最后,分析了断裂网几何参数对有效渗透率和非线性流动特性的影响。结果表明,所提模型的预测结果与现场测试数据吻合良好,能有效揭示不同流态下的渗流影响机制。此外,结果表明有效渗透率与裂缝的分形尺寸、相对粗糙度、孔径尺度、分布特征和水力梯度密切相关。流体流动的非线性行为大大降低了岩体的有效渗透率。所提出的模型可为评估岩体在不同断裂分布和流态下的运移能力提供参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Combined effects of the roughness, aperture, and fractal features on the equivalent permeability and nonlinear flow behavior of rock fracture networks
The hydraulic properties of a fractured rock mass are largely controlled by connected fracture networks. A thorough understanding of the physical flow processes in fracture networks is essential for assessing the transport capacity of the rock mass. However, the fracture surface roughness morphology, fracture distribution characteristics, and fluid flow regimes strongly influence the flow capacity of a fracture network. To this end, the rough topographic characteristics of fracture surfaces were quantified using fractal theory, and then the effective permeability model and nonlinear seepage effect assessment model of the rough fracture network for different flow regimes were developed based on the possible occurrence of laminar and turbulent flows in a single fracture. Finally, the influences of the geometric parameters of the fracture network on the effective permeability and nonlinear flow characteristics were analyzed. The results show that the prediction results of the proposed models are in good agreement with the field test data and can effectively reveal the seepage influence mechanisms under different flow regimes. Additionally, the results show that the effective permeability is closely related to the fractal dimension, relative roughness, aperture scale, distribution characteristics, and hydraulic gradient of the fractures. The nonlinear behavior of fluid flow significantly reduces the effective permeability of the rock mass. The proposed models can provide a reference for evaluating the transport capacity of rock masses under different fracture distributions and flow regimes.
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