Anisotropy in non-Darcy flow in individual rough-walled rock fractures

ObjectiveInvestigating the flow behavior of fluids in individual rough-walled rock fractures is fundamental for fully understanding the seepage characteristics of fluids in rock fracture networks. MethodsRock fractures were artificially synthesized based on the fractal theory, and numerical simulati...

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Main Authors: Yinbin ZHU, Zhen LIAO, Changdong LI, Hongbin LIU, Xihui JIANG
Format: Article
Language:zho
Published: Editorial Office of Coal Geology & Exploration 2025-02-01
Series:Meitian dizhi yu kantan
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Online Access:http://www.mtdzykt.com/article/doi/10.12363/issn.1001-1986.24.09.0570
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author Yinbin ZHU
Zhen LIAO
Changdong LI
Hongbin LIU
Xihui JIANG
author_facet Yinbin ZHU
Zhen LIAO
Changdong LI
Hongbin LIU
Xihui JIANG
author_sort Yinbin ZHU
collection DOAJ
description ObjectiveInvestigating the flow behavior of fluids in individual rough-walled rock fractures is fundamental for fully understanding the seepage characteristics of fluids in rock fracture networks. MethodsRock fractures were artificially synthesized based on the fractal theory, and numerical simulations of seepage along these fractures were performed using the COMSOL Multiphysics software. Then, fracture specimens with the same geometric characteristics as numerical models of fractures were prepared using 3D printing technology. In combination with the self-designed equipment for seepage experiments, this study conducted seepage experiments on these fracture specimens under different injection flow rates to investigate the impacts of varying injection directions on the microscopic and macroscopic behavior of non-Darcy flow in 3D individual rough-walled fractures. Results and Conclusions The results indicate that the differences in the surface roughness of rock fractures under different injection directions significantly influenced the seepage characteristics of fractures, with greater flow resistance, flow path tortuosity, and non-Darcy flow effect occurring in the injection direction with higher fracture surface roughness. The developmental degree of eddies in fractures was positively correlated with the fracture surface roughness. Specifically, eddies in the injection direction with higher fracture surface roughness manifested a higher developmental degree compared to those in the direction with lower surface roughness. The Forchheimer equation did not apply to the entire range of Reynolds numbers when describing non-Darcy flow in fractures. Instead, it was sufficiently accurate only in the case of the sufficient occurrence of non-Darcy flow. The higher anisotropy in the surface roughness, non-Darcy flow was more prone to occur along fractures in the direction with higher surface roughness, accompanied by more pronounced differences in flow behavior between both injection directions. Quantitative characterization models for describing the relationships of the critical Reynolds number with the anisotropy factor in the fracture surface roughness and average fracture aperture were established based on the seepage simulations of 3D fractures. The effectiveness of the established models was verified using seepage experiments. The results of this study serve as a reference for more comprehensive research on the anisotropy in non-Darcy flow behavior in rough-walled fractures.
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spelling doaj-art-b3513c1f415f44f5b8ef01579f654aba2025-08-20T02:52:52ZzhoEditorial Office of Coal Geology & ExplorationMeitian dizhi yu kantan1001-19862025-02-0153213014610.12363/issn.1001-1986.24.09.057024-09-0570zhuyanbinAnisotropy in non-Darcy flow in individual rough-walled rock fracturesYinbin ZHU0Zhen LIAO1Changdong LI2Hongbin LIU3Xihui JIANG4School of Engineering, China University of Geosciences, Wuhan 430074, ChinaYajiang Clean Energy Science and Technology Research (Beijing) Corporation Limited, Beijing 100038, ChinaSchool of Engineering, China University of Geosciences, Wuhan 430074, ChinaSchool of Engineering, China University of Geosciences, Wuhan 430074, ChinaSchool of Engineering, China University of Geosciences, Wuhan 430074, ChinaObjectiveInvestigating the flow behavior of fluids in individual rough-walled rock fractures is fundamental for fully understanding the seepage characteristics of fluids in rock fracture networks. MethodsRock fractures were artificially synthesized based on the fractal theory, and numerical simulations of seepage along these fractures were performed using the COMSOL Multiphysics software. Then, fracture specimens with the same geometric characteristics as numerical models of fractures were prepared using 3D printing technology. In combination with the self-designed equipment for seepage experiments, this study conducted seepage experiments on these fracture specimens under different injection flow rates to investigate the impacts of varying injection directions on the microscopic and macroscopic behavior of non-Darcy flow in 3D individual rough-walled fractures. Results and Conclusions The results indicate that the differences in the surface roughness of rock fractures under different injection directions significantly influenced the seepage characteristics of fractures, with greater flow resistance, flow path tortuosity, and non-Darcy flow effect occurring in the injection direction with higher fracture surface roughness. The developmental degree of eddies in fractures was positively correlated with the fracture surface roughness. Specifically, eddies in the injection direction with higher fracture surface roughness manifested a higher developmental degree compared to those in the direction with lower surface roughness. The Forchheimer equation did not apply to the entire range of Reynolds numbers when describing non-Darcy flow in fractures. Instead, it was sufficiently accurate only in the case of the sufficient occurrence of non-Darcy flow. The higher anisotropy in the surface roughness, non-Darcy flow was more prone to occur along fractures in the direction with higher surface roughness, accompanied by more pronounced differences in flow behavior between both injection directions. Quantitative characterization models for describing the relationships of the critical Reynolds number with the anisotropy factor in the fracture surface roughness and average fracture aperture were established based on the seepage simulations of 3D fractures. The effectiveness of the established models was verified using seepage experiments. The results of this study serve as a reference for more comprehensive research on the anisotropy in non-Darcy flow behavior in rough-walled fractures.http://www.mtdzykt.com/article/doi/10.12363/issn.1001-1986.24.09.0570individual rough-walled rock fractureanisotropynon-darcy flownumerical simulationseepage experiment
spellingShingle Yinbin ZHU
Zhen LIAO
Changdong LI
Hongbin LIU
Xihui JIANG
Anisotropy in non-Darcy flow in individual rough-walled rock fractures
Meitian dizhi yu kantan
individual rough-walled rock fracture
anisotropy
non-darcy flow
numerical simulation
seepage experiment
title Anisotropy in non-Darcy flow in individual rough-walled rock fractures
title_full Anisotropy in non-Darcy flow in individual rough-walled rock fractures
title_fullStr Anisotropy in non-Darcy flow in individual rough-walled rock fractures
title_full_unstemmed Anisotropy in non-Darcy flow in individual rough-walled rock fractures
title_short Anisotropy in non-Darcy flow in individual rough-walled rock fractures
title_sort anisotropy in non darcy flow in individual rough walled rock fractures
topic individual rough-walled rock fracture
anisotropy
non-darcy flow
numerical simulation
seepage experiment
url http://www.mtdzykt.com/article/doi/10.12363/issn.1001-1986.24.09.0570
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AT changdongli anisotropyinnondarcyflowinindividualroughwalledrockfractures
AT hongbinliu anisotropyinnondarcyflowinindividualroughwalledrockfractures
AT xihuijiang anisotropyinnondarcyflowinindividualroughwalledrockfractures