[2] GAO Qi-dong, LU Wen-bo, YAN Peng, et al. Effect of initiation location on distribution and utilization of explosion energy during rock blasting[J]. Bulletin of Engineering Geology and the Environment, 2019, 78(5): 3433-3447.
[6] ZHANG Hui, GUO Pan-pan, WANG Yi-xian, et al. Fracture behavior of rock with initial damage: theoretical, experimental, and numerical investigations[J]. Geofluids, 2020, 2020: 1-9.
[7] GAO Wei, CHEN Xin, HU Cheng-jie, et al. New damage evolution model of rock material[J]. Applied Mathematical Modelling, 2020, 86: 207-224.
[9] SHEN Ming-xuan, ZHAO Yu, BI Jing, et al. Micro-damage evolution and macro-mechanical property of preloaded sandstone subjected to high-temperature treatment based on NMR technique[J]. Construction and Building Materials, 2023, 36: 9130638.
[10] LIN Hang, FENG Jing-jing, CAO Ri-hong, et al. Comparative analysis of rock damage models based on different distribution functions[J]. Geotechnical and Geological Engineering, 2022, 40(1): 301-310.
[11] JIANG X, XUE Y, REN X, et al. Dynamic response characteristics and damage calculation method of fractured rock mass under blasting disturbance[J]. International Journal of Impact Engineering, 2024: 192.
[12] CHENG Pan, XIE Li-Xiang, LI Xing, et al. Numerical investigation of effect of eccentric decoupled charge structure on blasting-induced rock damage[J]. Journal of Central South University, 2022, 29(2): 663-679.
[13] GUO Y, YANG R, PENG S, et al. Experimental study on decoupled charge blasting-induced crack propagation with parabolic shaped charge[J]. Engineering Fracture Mechanics, 2024: 304.
[15] GUO Y, YANG R, PENG S, et al. Experimental study on decoupled charge blasting-induced crack propagation with parabolic shaped charge[J]. Engineering Fracture Mechanics, 2024: 304.
[19] XU Peng, YANG Ren-shu, ZUO Jin-jing, et al. Research progress of the fundamental theory and technology of rock blasting[J]. International Journal of Minerals, Metallurgy and Materials, 2022, 29(4): 705-716.
[20] MMD Banadaki, MOHANTY B. Numerical simulation of stress wave induced fractures inrock[J]. International Journal of Impact Engineering, 2012, s 40-41(2): 16-25.
[21] ZHANG Z, CHI L, YI C. An empirical approach for predicting burden velocities in rock blasting[J]. Journal of Rock Mechanics and Geotechnical Engineering, 2021, 13(4): 767-773.
[23] NAPIER-MUNN T. Is progress in energy-efficient comminution doomed[J]. Minerals Engineering, 2015, 73: 1-6.
[27] WANG P, XU J Y, FANG X Y, et al. Energy dissipation and damage evolution analyses for the dynamic compression failure process of red-sandstone after freeze-thaw cycles[J]. Engineering Geology, 2017, 221: 104-113.
[28] WANG Y F, CUI F. Energy evolution mechanism in process of Sandstone failure and energy strength criterion[J]. Journal of Applied Geophysics, 2018, 154: 21-28.
[29] XIE H P, LI L Y, PENG R D, et al. Energy analysis and criteria for structural failure of rocks[J]. Journal of Rock Mechanics and Geotechnical Engineering, 2009, 1(1): 11-20.
[30] LIU X S, NING J G, TAN Y L, et al. Damage constitutive model based on energy dissipation for intact rock subjected to cyclic loading[J]. International Journal of Rock Mechanics and Mining Sciences, 2016, 85: 27-32.
[32] CHESTER J, CHESTER F, KRONENBERG, et al. Fracture surface energy of the punchbowl fault[J]. San Andreas System. Nature, 2005, 437: 133-136.