A hybrid finite-discrete element method for modelling cracking processes in sandy mudstone containing a single edge-flaw under cyclic dynamic loading

Author:

Zhang Xiaolong1,Xu Wenjie2,Zhang Xiaoping3,Yu Yan1,Xu Chong1

Affiliation:

1. National Institute of Natural Hazards, Ministry of Emergency Management of China (NINH, MEMC)

2. State Key Laboratory of Hydroscience and Engineering, Tsinghua University

3. The Key Laboratory of Safety for Geotechnical and Structural Engineering of Hubei Province, School of Civil Engineering, Wuhan University

Abstract

Abstract

Rock mass deformation and failure are macroscopic manifestations of crack initiation, propagation, and coalescence. However, simulating the transition of rocks from continuous to discontinuous media under dynamic loads remains challenging. This study proposes a hybrid finite-discrete element method (HFDEM) to model crack propagation. Uniaxial compression tests on sandy mudstone with a single edge-flaw are simulated using HFDEM, and the results are compared with laboratory tests. The effects of pre-existing flaw inclination angle and dynamic loading frequency on the crack process are investigated. Results show that under dynamic loading, rock samples exhibit significantly higher compressive strength compared to quasi-static loading, which increases with dynamic frequency. Crack initiation angle also increases with flaw inclination angle and dynamic frequency. Experimental and numerical simulation results demonstrate crack initiation at the defect's tip, formation of wing cracks, and a combination of tensile and shear failure modes. The comparative analysis shows that HFDEM successfully captures crack interaction mechanisms and accurately simulates the overall failure behavior of cracked specimens. This study provides valuable insights into crack development and failure of rocks under seismic loads, offering guidance for engineering practices.

Publisher

Springer Science and Business Media LLC

Reference32 articles.

1. Dynamic discrete analysis of an earthquake-induced large-scale landslide[J];Wu JH;International Journal of Rock Mechanics and Mining Sciences,2009

2. Simulation of Tsaoling landslide, Taiwan, based on Saint Venant equations over general topography[J];Kuo CY;Engineering Geology,2009

3. The characteristics and failure mechanism of the largest landslide triggered by the Wenchuan earthquake;Huang R;Landslides,2012

4. Xu WJ, Wang L, Cheng K. The failure and river blocking mechanism of large-scale anti-dip rock landslide induced by earthquake[J]. Rock Mechanics and Rock Engineering, 2022, 55(8): 4941–4961.

5. Co-seismic landslide hazard assessment of Uttarakhand state (India) based on the modified Newmark model[J];Gupta K;Journal of Asian Earth Sciences: X,2022

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