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| Title: | Wmic-GMTS and Wmic-GMERR criteria for micron-scale crack propagation in red-bed soft rocks under hydraulic action | Authors: | Cui, G Lan, C Zhou, C Liu, Z Xia, C |
Issue Date: | Sep-2024 | Source: | Journal of rock mechanics and geotechnical engineering, Sept 2024, v. 16, no. 9, p. 3641-3660 | Abstract: | Micron-scale crack propagation in red-bed soft rocks under hydraulic action is a common cause of engineering disasters due to damage to the hard rock–soft rock–water interface. Previous studies have not provided a theoretical analysis of the length, inclination angle, and propagation angle of micron-scale cracks, nor have they established appropriate criteria to describe the crack propagation process. The propagation mechanism of micron-scale cracks in red-bed soft rocks under hydraulic action is not yet fully understood, which makes it challenging to prevent engineering disasters in these types of rocks. To address this issue, we have used the existing generalized maximum tangential stress (GMTS) and generalized maximum energy release rate (GMERR) criteria as the basis and introduced parameters related to micron-scale crack propagation and water action. The GMTS and GMERR criteria for micron-scale crack propagation in red-bed soft rocks under hydraulic action (abbreviated as the Wmic-GMTS and Wmic-GMERR criteria, respectively) were established to evaluate micron-scale crack propagation in red-bed soft rocks under hydraulic action. The influence of the parameters was also described. The process of micron-scale crack propagation under hydraulic action was monitored using uniaxial compression tests (UCTs) based on digital image correlation (DIC) technology. The study analyzed the length, propagation and inclination angles, and mechanical parameters of micron-scale crack propagation to confirm the reliability of the established criteria. The findings suggest that the Wmic-GMTS and Wmic-GMERR criteria are effective in describing the micron-scale crack propagation in red-bed soft rocks under hydraulic action. This study discusses the mechanism of micron-scale crack propagation and its effect on engineering disasters under hydraulic action. It covers topics such as the internal-external weakening of nano-scale particles, lateral propagation of micron-scale cracks, weakening of the mechanical properties of millimeter-scale soft rocks, and resulting interface damage at the engineering scale. The study provides a theoretical basis for the mechanism of disasters in red-bed soft-rock engineering under hydraulic action. | Keywords: | Digital image correlation (DIC) Generalized maximum energy release rate (GMERR) criterion Generalized maximum tangential stress (GMTS) criterion Hydraulic action Micron-scale cracks Red-bed soft rocks |
Publisher: | 科学出版社 (Kexue Chubanshe,Science Press) | Journal: | Journal of rock mechanics and geotechnical engineering | ISSN: | 1674-7755 | EISSN: | 2589-0417 | DOI: | 10.1016/j.jrmge.2023.12.031 | Rights: | © 2024 Institute of Rock and Soil Mechanics, Chinese Academy of Sciences. Production and hosting by Elsevier B.V. This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/). The following publication Cui, G., Lan, C., Zhou, C., Liu, Z., & Xia, C. (2024). Wmic-GMTS and Wmic-GMERR criteria for micron-scale crack propagation in red-bed soft rocks under hydraulic action. Journal of Rock Mechanics and Geotechnical Engineering, 16(9), 3641-3660 is available at https://doi.org/10.1016/j.jrmge.2023.12.031. |
| Appears in Collections: | Journal/Magazine Article |
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| 1-s2.0-S1674775524001483-main.pdf | 7.11 MB | Adobe PDF | View/Open |
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