Response properties of geometries of coal penetrating fracture on seepage behavior

IF 11.7 1区 工程技术 Q1 MINING & MINERAL PROCESSING
Penghua Han , Kai Wang , Jiewen Pang , Xiaofeng Ji , Cun Zhang
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Abstract

The fracture surfaces of coal-rock masses formed under mining-induced stress generally exhibit complex geometries, and the fracture geometry is one of the primary factors affecting the seepage characteristics of coal-rock penetrating fracture. This paper investigates the seepage characteristics of 5 groups of coal penetrating fracture (CPF) with different joint roughness coefficients (JRCs). Based on 3D morphology scanner tests and hydraulic coupling tests, a characterization method of effective geometric parameters in fracture surfaces under various confining pressures was improved, and a relationship between effective geometric parameters and the confining pressure is established. The results indicate that the nonlinear flow behavior in a CPF primarily includes three types: non-Newtonian fluid seepage under high confining pressure and low JRC, non-Darcy seepage under low confining pressure and high JRC, and the whole process of seepage characteristics between these two conditions. Among them, non-Newtonian fluid seepage is caused by significant fracture expansion, while non-Darcy seepage can be attributed to turbulence effects. During the seepage process, the geometric parameters with different JRC fracture samples all exhibit exponential changes with the increase of confining pressure. In addition, under high confining pressure, the effective contact ratio, effective fracture aperture, and void deviation ratio with high JRC fracture samples under high confining pressure increase by 93.5%, 67.4%, and 24.9%, respectively, compared with those of low JRC fracture samples. According to the variation of geometric parameters in a CPF with external stress, a seepage model considering geometric parameters in a CPF is proposed. By introducing the root mean square error (RMSE) and coefficient of determination (R2) to evaluate the error and goodness of fit between model curves and experimental data, it is found that the theoretical curves of model in this paper have the best matching with the experimental data. The average values of RMSE and R2 for model in this paper are 0.002 and 0.70, respectively, which are better than models in the existing literature.
穿煤断裂几何形状对渗流行为的响应特性
采动应力作用下形成的煤岩体裂隙面一般具有复杂的几何形状,裂隙几何形状是影响煤岩穿透裂隙渗流特性的主要因素之一。研究了不同节理粗糙度系数(jrc)的5组煤穿透裂隙(CPF)的渗流特征。基于三维形貌扫描试验和水力耦合试验,改进了不同围压条件下裂缝表面有效几何参数表征方法,建立了有效几何参数与围压之间的关系。结果表明:CPF内的非线性渗流行为主要包括高围压和低JRC条件下的非牛顿流体渗流、低围压和高JRC条件下的非达西渗流以及两种条件下的全过程渗流特征。其中,非牛顿流体渗流是由裂缝显著扩张引起的,而非达西流体渗流则可归因于湍流效应。在渗流过程中,不同JRC裂缝试样的几何参数均随围压的增加呈指数变化。此外,高围压下,高JRC裂缝试样的有效接触比、有效裂缝孔径和空隙偏差比分别比低JRC裂缝试样提高了93.5%、67.4%和24.9%。根据CPF内几何参数随外加应力的变化规律,提出了考虑几何参数的CPF渗流模型。通过引入均方根误差(RMSE)和决定系数(R2)来评价模型曲线与实验数据的误差和拟合优度,发现本文模型的理论曲线与实验数据的拟合效果最好。本文模型的RMSE均值为0.002,R2均值为0.70,优于已有文献模型。
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来源期刊
International Journal of Mining Science and Technology
International Journal of Mining Science and Technology Earth and Planetary Sciences-Geotechnical Engineering and Engineering Geology
CiteScore
19.10
自引率
11.90%
发文量
2541
审稿时长
44 days
期刊介绍: The International Journal of Mining Science and Technology, founded in 1990 as the Journal of China University of Mining and Technology, is a monthly English-language journal. It publishes original research papers and high-quality reviews that explore the latest advancements in theories, methodologies, and applications within the realm of mining sciences and technologies. The journal serves as an international exchange forum for readers and authors worldwide involved in mining sciences and technologies. All papers undergo a peer-review process and meticulous editing by specialists and authorities, with the entire submission-to-publication process conducted electronically.
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