[1] 谢和平, 李存宝, 高明忠, 等.深部原位岩石力学构想与初步探索[J]. 岩石力学与工程学报,2021,40(2):217-232.(Xie Heping, Li Cunbao, Gao Mingzhong, et al. Conception and preliminary exploration of deep in-situ rock mechanics [J]. Chinese Journal of Rock Mechanics and Engineering, 2021,40(2): 217-232. (in Chinese))
[2] Kang F C,Li Y C,Tang C A. Grain size heterogeneity controls strengthening to weakening of granite over high-temperature treatment[J]. International Journal of Rock Mechanics and Mining Sciences,2021,145: 104848.1-104848.17.
[3] Sabri M, Ghazvinian A, Nejati H R. Effect of particle size heterogeneity on fracture toughness and failure mechanism of rocks[J]. International Journal of Rock Mechanics and Mining Sciences,2016,81: 79-85.
[4] 邓朝福, 刘建锋, 陈亮, 等.不同粒径花岗岩断裂力学行为及声发射特征研究[J]. 岩土力学,2016,37(8):2313-2320.(Deng Chaofu, Liu Jianfeng, Chen Liang, et al. Study on fracture mechanics behavior and acoustic emission characteristics of granite with different grain sizes [J]. Rock and Soil Mechanics, 2016,37(8): 2313-2320. (in Chinese))
[5] 王朋姣.花岗岩的岩石学特征与物理力学性质之间的关系[D]. 郑州:华北水利水电大学,2017.(Wang Pengjiao. Relationship between petrology characteristics and physical and mechanical properties of granite [D]. Zhengzhou: North China University of Water Resources and Electric Power, 2017.(in Chinese))
[6] 宋朝阳, 纪洪广, 张月征, 等.不同粒度弱胶结砂岩声发射信号源与其临界破坏前兆信息判识[J]. 煤炭学报,2020,45(12): 4028-4036.(Song Chaoyang, Ji Hongguang, Zhang Yuezheng, et al. Identification of acoustic emission signal sources and critical failure precursor information of weakly cemented sandstone with different particle sizes [J]. Journal of China Coal Society, 2020,45 (12): 4028-4036. (in Chinese))
[7] 王泽鹏, 顾义磊, 房局, 等.粒度对砂岩力学及声发射特性的影响研究[J]. 地下空间与工程学报,2017,13(增2):705-714.(Wang Zepeng, Gu Yilei, Fang Ju, et al. Study on the influence of particle size on the mechanical and acoustic emission characteristics of sandstone [J]. Chinese Journal of Underground Space and Engineering, 2017,13(Supp.2): 705-714. (in Chinese))
[8] 王泽鹏, 顾义磊, 耿文博, 等.不同粒度砂岩声发射分形特征研究[J]地下空间与工程学报,2018,14(增2):594-599.(Wang Zepeng, Gu Yilei, Geng Wenbo, et al. Study on the fractal characteristics of acoustic emission from sandstone with different particle sizes [J] Chinese Journal of Underground Space and Engineering, 2018,14(Supp.2): 594-599. (in Chinese))
[9] 赵奎, 周永涛, 曾鹏, 等.三点弯曲作用下不同粒径组成的类岩石材料声发射特性试验研究[J]. 煤炭学报,2018,43(11):3107-3114.(Zhao Kui, Zhou Yongtao, Zeng Peng, et al. Experimental study on acoustic emission characteristics of rock like materials with different particle size compositions under three-point bending [J]. Journal of China Coal Science, 2018,43(11): 3107-3114. (in Chinese))
[10] 王立, 倪彬, 谢伟, 等.不同粒径黄砂岩微观-宏观裂纹演化机制研究[J]. 岩土力学,2022,43(增2): 373-381.(Wang Li, Ni Bin, Xie Wei, et al. Study on the micro macro crack evolution mechanism of different grain sizes of yellow sandstone [J]. Rock and Soil Mechanics, 2022,43(Supp.2): 373-381. (in Chinese))
[11] 何满潮, 赵菲, 张昱, 等.瞬时应变型岩爆模拟试验中花岗岩主频特征演化规律分析[J]. 岩土力学,2015,36(1): 1-8,33.(He Manchao, Zhao Fei, Zhang Yu, et al. Analysis of evolution law of dominant frequency characteristics of granite in transient strain rockburst simulation test [J]. Rock and Soil Mechanics, 2015, 36(1): 1-8,33. (in Chinese))
[12] 张晓平, 吕根根, 张旗, 等.单轴压缩条件下硅质粉砂岩应力阈值研究[J]. 工程地质学报,2020,28(3):441-449.(Zhang Xiaoping, Lv Gen'gen, Zhang Qi, et al. Study on stress threshold of siliceous siltstone under uniaxial compression [J]. Chinese Journal of Engineering Geology, 2020,28(3): 441-449. (in Chinese))
[13] 王创业,常新科,刘沂琳.花岗岩破裂全过程声发射时频域信号特征及前兆识别信息[J]. 长江科学院院报,2020,37(3):82-89.(Wang Chuangye, Chang Xinke, Liu Yilin. Time frequency domain signal characteristics and precursor identification information of acoustic emission during the entire process of granite fracture [J]. Chinese Journal of the Yangtze River Research Institute, 2020,37(3): 82-89. (in Chinese))
[14] 朱星, 唐垚, 范杰, 等.基于临界慢化理论的细砂岩破坏前兆试验研究[J]. 岩石力学与工程学报,2022,41(1):53-61. (Zhu Xing, Tang Yao, Fan Jie, et al. Experimental study on failure precursors of fine sandstone based on critical slowing down theory [J]. Chinese Journal of Rock mechanics and Engineering, 2022,41(1): 53-61. (in Chinese))
[15] Rodríguez P, Celestino T B. Application of acoustic emission monitoring and signal analysis to the qualitative and quantitative characterization of the fracturing process in rocks[J]. Engineering Fracture Mechanics,2019,210: 54-69.
[16] Zhao K, Ma H L, Yang C H,et al. The role of prior creep duration on the acoustic emission characteristics of rock salt under cyclic loading[J]. International Journal of Rock Mechanics and Mining Sciences,2022,157: 105166.1-105166.12.
[17] Shannon C E. A mathematical theory of communication [J]. Bell System Technical Journal,1948,27(4):623-656.
[18] 许传华,任青文.围岩稳定分析的熵突变准则研究[J]. 岩土力学,2004(3):437-440.(Xu Chuanhua, Ren Qingwen. Study on entropy mutation criterion for stability analysis of surrounding rocks [J]. Rock and Soil Mechanics, 2004(3): 437-440. (in Chinese))
[19] Santis D S, Tomor K A. Laboratory and field studies on the use of acoustic emission for masonry bridges[J]. NDT and E International,2013,55: 64-74.
[20] 朱振飞,陈国庆,肖宏跃,等.基于声发射多参量分析的岩桥裂纹扩展研究[J]. 岩石力学与工程学报,2018,37(4): 909-918.(Zhu Zhenfei, Chen Guoqing, Xiao Hongyue, et al. Research on crack growth of rock bridge based on acoustic emission multi parameter analysis [J]. Chinese Journal of Rock Mechanics and Engineering, 2018,37(4): 909-918. (in Chinese))