[1] 刘新荣, 景瑞, 缪露莉, 等. 巫山段消落带岸坡库岸再造模式及典型案例分析[J]. 岩石力学与工程学报, 2020, 39(7): 1321-1332. (Liu Xinrong, Jing Rui, Miao Luli,et al.Reconstruction models and typical case analysis of the fluctuation belt of reservoir bank slopes in Wushan[J]. Chinese Journal of Rock Mechanics and Engineering, 2020, 39(7): 1321-1332. (in Chinese))
[2] 李长冬, 龙晶晶, 姜茜慧, 等. 水库滑坡成因机制研究进展与展望[J]. 地质科技通报, 2020, 39(1): 67-77. (Li Changdong, Long Jingjing, Jiang Qianhui, et al. Advance and prospect of formation mechanism for reservoir landslide[J]. Bulletin of Geological Science and Technology, 2020, 39(1): 117-122. (in Chinese))
[3] 周家文, 陈明亮, 瞿靖昆, 等. 水库滑坡灾害致灾机理及防控技术研究与展望[J]. 工程科学与技术, 2023, 55(1): 110-128. (Zhou Jiawen, Chen Mingliang, Qu Jingkun, et al. Research and prospect on disaster-causing mechanism and prevention-control technology of reservoir landslides[J]. Advanced Engineering Sciences, 2023, 55(1): 110-128. (in Chinese))
[4] 王跃鹏, 刘向君, 熊健, 等. 富有机质页岩水化特征的试验研究[J]. 地下空间与工程学报, 2022, 18(3): 891-900.(Wang Yuepeng, Liu Xiangjun, Xiong Jian, et al. Experimental study on hydration characteristics of organic-rich shale[J]. Chinese Journal of Underground Space and Engineering, 2022, 18(3): 891-900. (in Chinese))
[5] 邓华锋, 齐豫, 李建林, 等. 水-岩作用下断续节理砂岩力学特性劣化机理[J]. 岩土工程学报, 2021, 43(4): 634-643. (Deng Huafeng, Qi Yu, Li Jianlin, et al.Degradation mechanism of intermittent jointed sandstone under water-rock interaction[J]. Chinese Journal of Geotechnical Engineering, 2021, 43(4): 634-643. (in Chinese))
[6] 蒋建国, 郭建强, 陈建行, 等. 干湿循环作用下泥质白云岩能量机制试验研究[J]. 地下空间与工程学报, 2022, 18(2): 522-531.(Jiang Jianguo, Guo Jianqiang, Chen Jianhang, et al. Experimental study on energy mechanism of argillaceous dolomite under cyclic wetting and drying[J]. Chinese Journal of Underground Space and Engineering, 2022, 18(2): 522-531. (in Chinese))
[7] 郭永春, 周其健, 屈智辉, 等. 水岩相互作用下钙芒硝盐岩强度衰减机理[J]. 地下空间与工程学报, 2021, 17(4): 1045-1051.(Guo Yongchun, Zhou Qijian, Qu Zhihui, et al. Strength attenuation mechanism of the interaction between water and glauberite salt rock[J]. Chinese Journal of Underground Space and Engineering, 2021, 17(4): 1045-1051. (in Chinese))
[8] Gratchev I, Pathiranagei S V, Kim D H. Strength properties of fresh and weathered rocks subjected to wetting-drying cycles[J]. Geomechanics and Geophysics for Geo-Energy and Geo-Resources, 2019, 5(3): 211-221.
[9] Aly N, Hamed A,Abd EI Aal A. The impact of hydric swelling on the mechanical behavior of Egyptian Helwan limestone[J]. Periodica Polytechnica Civil Engineering, 2020, 64(2): 589-596.
[10] 蒋海飞, 刘东燕, 黄伟, 等. 高围压下高孔隙水压对岩石蠕变特性的影响[J]. 煤炭学报, 2014, 39(7): 1248-1256.(Jiang Haifei, Liu Dongyan, Huang Wei, et al. Influence of high pore water pressure on creep properties of rock under high confining pressure[J]. Journal of China Coal Society, 2014, 39(7): 1248-1256. (in Chinese))
[11] 肖欣宏, 王静, 谢小帅, 等. 水岩作用下红层泥岩蠕变特性[J]. 长江科学院院报, 2020, 37(9): 96-101, 109. (Xiao Xinhong, Wang Jing, Xie Xiaoshuai, et al. Creep characteristics of red mudstone under water-rock interaction[J]. Journal of Yangtze River Scientific Research Institute, 2020, 37(9): 96-101. (in Chinese))
[12] 邵珠山, 靳冬冬, 陈浩哲, 等. 含水状态对石英砂岩单轴分级蠕变性能影响研究[J]. 应用力学学报, 2021, 38(5): 1839-1845. (Shao Zhushan, Jin Dongdong, Chen Hanzhe, et al. Investigation on creep properties of different moisture state quartz sandstone by multi-stage test[J]. Chinese Journal of Applied Mechanics, 2021, 38(5): 1839-1845. (in Chinese))
[13] 王玮玮, 刘新喜, 李盛南, 等. 干湿循环对炭质泥岩蠕变及损伤特性的影响[J]. 湖南大学学报(自然科学版), 2022, 49(9): 173-181. (Wang Weiwei, Liu Xinxi, Li Shengnan, et al. Study on effect of wetting and drying cycles on creep and damage characteristics of carbonaceous mudstone[J]. Journal of Hunan University(Natural Sciences), 2022, 49(9): 173-181. (in Chinese))
[14] 蒋成, 张树光, 刘新民, 等. 不同含水率砂岩蠕变试验及损伤模型研究[J]. 中国农村水利水电, 2022(9): 65-69, 82. (Jiang Cheng, Zhang Shuguang, Liu Xinmin, et al. Creep test and damage model of sandstone with different water content[J]. China Rural Water and Hydropower, 2022(9): 65-69, 82. (in Chinese))
[15] Ramon A, Caselle C, Bonetto S M R, et al. Effect of microstructure and relative humidity on strength and creep of gypsum[J]. Rock Mechanics and Rock Engineering, 2021, 54(8): 4121-4145.
[16] Chen Peizhao, Tang Shibin, Liang Xin,et al. The influence of immersed water level on the short- and long-term mechanical behavior of sandstone[J]. International Journal of Rock Mechanics and Mining Sciences, 2021, 138: 104631:1-13.
[17] 王锦国, 周云, 黄勇. 三峡库区猴子石滑坡地下水动力场分析[J]. 岩石力学与工程学报, 2006, 25(增1): 2757-2762.(Wang Jinguo, Zhou Yun, Huang Yong. Groundwater analyses of Houzishi landslide in the three gorges reservoir[J]. Chinese Journal of Rock Mechanics and Engineering, 2006, 25(Supp.1): 2757-2762. (in Chinese))
[18] 胡鹏. 孔隙水压作用下饱和砂岩蠕变特性试验研究[D]. 宜昌:三峡大学, 2020. (Hu Peng. Experimental study on creep characteristics of saturated sandstone under pore water pressure [D]. Yichang: China Three Gorges University, 2020. (in Chinese))
[19] 刘雄. 岩石流变学概论[M]. 北京:地质出版社, 1994.(Liu Xiong. Introduction to rock rheology[M]. Beijing: Geological Publishing House, 1994. (in Chinese))