师资队伍

教授/研究员/正高工

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汪发武

职  称:教授

学  位:博士

电子邮箱:20016@tongji.edu.cn

导师类别:博士生导师


研究方向:地质灾害防治、环境地球灾害、气候变化与喜马拉雅冰岩崩灾害链。

教育工作经历

科研项目

学术成果

教学工作

奖励与荣誉

学术兼职

研究生培养

其他

教育经历

1999.04~2000.03 日本京都大学防灾研究所,滑坡学,博士后

1996.04~1999.03 日本京都大学理学部,地球物理学,理学博士

1986.09~1989.06 长春地质学院,环境地质工程,工学硕士

1982.09~1986.07 长春地质学院,水文地质及工程地质学,大学本科毕业


工作经历

2020.05~至今 同济大学土木工程学院 教授

2013.01~2020.04 日本岛根大学 自然灾害与减灾研究中心 主任

2012.10~2020.05 日本岛根大学 综合理工学部地球科学系 教授

2010.04~2012.09 日本岛根大学 综合理工学部地球科学系 副教授

2004.06~2010.03 日本京都大学 防灾研究所 助理教授

2002.10~2004.05 日本金泽大学 土木与建设工程系 副教授

2000.05~2002.09 日本金泽大学 土木与建设工程系 讲师

1992.07~1995.09 长春地质学院 水文地质及工程地质系 讲师

1989.07~1992.06 长春地质学院 水文地质及工程地质系 助教



  1. 国家自然科学基金国际合作重点项目,暖湿化背景下喜马拉雅地区高位崩滑链生灾害成灾机理及风险评价研究,2026.01-2030.12,主持

  2. 国家自然科学基金重点项目, 藏东南高位远程滑坡灾变动力学及致灾范围预测研究, 2023.01-2027.12, 主持;

  3. 日本学术振兴会(JSPS)面上项目(基盘B)火山碎屑堆积区降雨和地震诱发高速远程滑坡起滑机制研究,2019.04-2022.03,主持

  4. 日本学术振兴会(JSPS)重点项目(基盘A)滑坡堰塞坝溃决前兆现象及预测研究,2012.04-2017.03,主持;

  5. 日本学术振兴会(JSPS)面上项目(基盘B)海底滑坡的运动机理及其对海底管线冲击力评价,2008.04-2011.03,主持;

  6. 日本学术振兴会(JSPS)面上项目(基盘B)中国三峡水库大规模蓄水造成的滑坡风险评价,2006.04-2009.03,主持;

  7. 日本学术振兴会(JSPS)面上项目(基盘B)白山甚之助谷滑坡灾害现象和运动预测,2003.04-2006.03,主持。


主要论文

    1. Liang L, Pan R, Dai F, Wang F, Zhu Y (2026) Quantitative analysis of pore-water pressure behaviors in a rapid and long-runout landslide based on ring shear test. Landslides. 23(4) 1117-1129. 

    2. 马昊, 汪发武胡明鉴, 莫洵懿, 付子进等 (2026) 藏东南八宿县林卡乡高位古滑坡群的孕灾条件与形成机制. 地球科学, 51(4) 1245-1263

    3. 张波,  汪发武, 盛鹏, 尤琪, 冯有千等 (2026) 藏东南地质灾害的内外动力影响模式研究进展. 地球科学, 51(4) 1264-1286

    4. Liu W, Chen Y, Gao Jie, Wang F (2025) The motion state transformation of submarine mass movement: an experimental study. Bulletin of Engineering Geology and the Environment, 84(10)

    5. Fu Z, Wang F, Ma H, You Qi, Feng Y (2025) Records of shallow landslides triggered by extreme rainfall in July 2024 in Zixing, China. SCIENTIFIC DATA, 12 (1)

    6. Liu W, Li S, Wang F (2025) Two types of erosion caused by the 2000 Yigong long-runout landslide and their impact on the evolution of the Zhamunong Valley from a quantitative geomorphic perspective. Landslides.

    7. Peng X, Wang F, Zhao Z (2025) A Framework for Indeterministic Model-Based      Microtremor Inversion to Estimate Mechanical Properties of Rock Mass in      Tectonic Mélange Area. IEEE Transactions on Geoscience and Remote Sensing, Vol.63

    8. Sheng P, Wang F, Chen Y, Zhang B, Feng Y (2025) Instability precursors of Liangshui landslide detected by integrating InSAR and DIC technologies. Landslides.

    9. Wang F, Li R, Zhang S, Peng X, Fu Z, Yoshida M, Miyajima M (2025) Characteristics and controlling factors of landslides triggered by the 2024 Noto Peninsula Earthquake. Natural Hazards (2025). 

    10. Peng X, Wang F, Miyajima M, Yoshida M, Zhang S (2025) Brief report of a field investigation in Noto Peninsula, Japan, after the 2024 Noto earthquake. Geoenvironmental Disasters

    11. Zhao Z,  Zhu G, Peng X, Wang F (2025) Effect of block geometry on the estimation of low volumetric block proportions: A tunneling-based computer bimrock model. Underground Space, 23: 23-42

    12. Ma H, Wang F, Fu Z, Feng Y, You Q (2025) Characterizing the clustered landslides triggered by extreme rainfall during the 2024 typhoon Gaemi in Zixing City, Hunan Province, China. Landslides, 22(7): 2311-2329

    13. Ma H, Wang F (2025) Factors controlling the formation and movement of clustered shallow landslides triggered by the extreme rainstorm in July 2023 in Beijing, China. Geomorphology, 478:

    14. 彭星亮, 汪发武, 陈也, 赵子昕 (2025) 白格滑坡构造混杂岩的空间结构和强度特性对滑动带形成和远程运动的影响. 地球科学, 50(10) 3844-3856

    15. Peng X, Wang F,  Zhao Z (2025) A Framework for Indeterministic Model Based Microtremor Inversion to Estimate Mechanical Properties of Rock Mass in Tectonic Mélange Area. IEEE Transactions on Geoscience and Remote Sensing,   

    16. Chen YWang FFeng Y, Peng X, Zhu G (2025) Localised fluidisation in a giant loess landslide. Engineering Geology, 344:

    17. Ma h, Wang F (2024) Inventory of shallow landslides triggered by extreme precipitation in July 2023 in Beijing, China. Scientific Data, 11(1): 1083-

    18. Wang F, Feng Y, Chen Y, Zhang B, Fu Z, Ma H, Cao S (2024) A liquefied long-runout loess landslide triggered by the Jishishan Ms6.2 earthquake on 18 December 2023 in Qinghai, China. Landslides, 21:3169–3177

    19. Yan K, Miyajima M, Kumsar H, Aydan O, Ulusay R, Wang F (2024) Preliminary report of field reconnaissance on the 6 February 2023 Kahramanmaras Earthquakes in Turkiye. Geoenvironmental Disasters,      11(11):1-24

    20. Fu Z, Ma H, Wang F, Dou J, Zhang B and Fang Z (2024) An Integrated Framework of Positive-Unlabeled and Imbalanced Learning for Landslide Susceptibility Mapping. IEEE Journal of Selected Topics in Applied      Earth Observations and Remote Sensing, vol. 17, pp. 15596-15611.

    21. Wang F, Zhang B, Yan K, (2024) Rainfall-induced      Guilong landslide-mudflow in a terraced field of southwestern China on 22 June 2022. Landslides.

    22. Wang F, Zhang B, Lü Q, Ma H, Chen Y, Fu Z, Wu J (2024) Impact of a clustered rainfall-induced geo-hydrological disaster on densely populated gully villages in Fuyang District, Hangzhou City,      Zhejiang Province, China on 22 July 2023. Landslides

    23. Zheng H, Guo Y, Tao Z, Zhang W, Li M, Wang F (2024) Research on deformation and temperature characteristics of micro negative Poisson’s ratio anchor rod. Construction and Building Materials, 412      (2024) 134924.

    24. Fu Z, Wang F, Dou J, Nam K, Ma H (2023) Enhanced Absence Sampling Technique for Data-Driven Landslide Susceptibility Mapping: A Case Study in Songyang County, China. Remote Sens, 15, 3345.

    25. Nam K, Wang F, Dai Z, Yan K, Wang J, Kim J, Zhang S (2023) Kinetic characteristics and runout behavior of the rainfall‑induced Hoengseong landslide at a solar power plant on 9 August 2022 in Gangwon Province, Korea. Landslides, 20:1905–1923.

    26. Yan K, Wang F, Liu W, Zhang B, Gao J (2023) Two long‑runout rock avalanches in 2022 and 2020 in an underground coal mining field in Zhijin, China. Landslides, 20:1465–1480.

    27. Yan K, Wang F, Fan G, Liu Y, Nam K (2023) The Azijue debris flow induced by rainfall on 30 August 2020 in Ganluo County, Sichuan Province, Southwestern China. Landslides, 20:771-788.

    28. Wang F, Chen Y, Yan K (2023) A destructive mudstone landslide hit a high-speed railway on 15 September 2022 in Xining city, Qinghai province, China. Landslides, 20:871–874.

    29. Yang H, Xing B, He J, Cheng Q, Wang F (2023) The kinematic characterization of a rockfall in Zagunao Valley in the eastern margin of the Tibetan Plateau. Landslides20:601–614.

    30. Wang F, Peng X, Zhu G, Nam K, Chen Y, Yan K (2022) The Hongchi landslide triggered by heavy rainfall from Super Typhoon In-Fa  on 25 July 2021 in Hangzhou City, Zhejiang Province, China. Bulletin of Engineering Geology and the Environment,  81 (10), 1-18.

    31. Wang F, Chen Y, Peng X, Zhu G, Yan K, Ye Z (2022)  The fault‑controlled Chengtian landslide triggered by rainfall on 20 May 2021 in Songyang County, Zhejiang Province, China. Landslides,      19: 1751–1765

    32. Wang F, Yan K, Nam K, Zhu G, Peng X, Zhao Z (2022) The Wuxie debris flows triggered by a record‑breaking rainstorm on 10 June 2021 in Zhuji City, Zhejiang Province, China. Landslides, 19: 1913–1934

    33. Wang F, Zhao Z, Chen Y, Zhu G, Nam K, Ye Z (2022) Guocun landslide in a slate slope with dip structure on 27 March 2021 in Tonglu County, Zhejiang Province, China. Landslides, 19: 1435–1447

    34. Zhang S, Wang F, Li R (2022) First insight into the catastrophic Atami debris flow induced by a rain gush on 3 July 2021 in Shizuoka, Japan. Landslides, 19: 527–532

    35. 汪发武, 陈也, 刘伟超, 高杰. 2022. 藏东南高位远程滑坡动力学特征及研究难点. 工程地质学报, 30(6): 1831-1841.

    36. 汪发武, 宋琨 (2021)    库水位涨落条件下不同结构边坡的变形破坏机制分析——以千将坪滑坡和树坪滑坡为例. 工程地质学报, 29 (3): 575-582

    37. Vilímek V, Wang F, Strom A (2021Catastrophic landslides and frontiers of landslide science. Landslides, 18 (11): 3733-3735

    38. Song K, Wang F, Zuo Q, Huang B, Mao W, Zheng H (2021) Successful disaster management of the July 2020 Shaziba landslide triggered by heavy rainfall in Mazhe Village, Enshi City, Hubei Province, China. Landslides, 18 (10): 3503-3507

    39. Wang F, Zhang S, Li R, Zhou R, Auer A, Ohira H, Dai Z, Inui T (2021) Hydrated halloysite: the pesky stuff responsible for a cascade of landslides triggered by the 2018 Iburi earthquake, Japan. Landslides, 18 (8): 2869-2880

    40. Li DY, Nian TK, Wu H, Wang F, Zheng L (2020) A predictive model for the geometry of landslide dams in V-shaped valleys. Bulletin of Engineering Geology and Environment, 79: 4595-4608

    41. Li R, Wang F, Zhang S (2020) Failure mechanism of a flow-like landslide triggered by the 2018 Western Shimane Earthquake. Landslides, 17: 2359–2371

    42. Wang FW, Dai Z, Takahashi I, Tanida Y (2020) Soil moisture response to water infiltration in a 1-D slope soil column model. Engineering Geology. Volume 267, 105482.

    43. Nam K, Wang FW (2020) An extreme rainfall-induced landslide susceptibility assessment using autoencoder combined with random forest in Shimane Prefecture, Japan. Geoenvironmental Disasters 7 (1), 6.

    44. Li R, Wang FW, Zhang S (2020) Controlling role of Ta-d pumice on the coseismic landslides triggered by 2018 Hokkaido Eastern Iburi Earthquake. Landslides, 1-18.

    45. Zhang S, Wang FW (2019) Three-dimensional seismic slope stability assessment with the application of Scoops3D and GIS: a case study in Atsuma, Hokkaido. Geoenvironmental Disasters 6 (1), 9.

    46. Nam K, Wang FW (2019) The performance of using an autoencoder for prediction and susceptibility assessment of landslides: A case study on landslides triggered by the 2018 Hokkaido Eastern Iburi earthquake. Geoenvironmental Disasters 6 (1), 19.

    47. Dhungana P, Wang FW (2019) The relationship among the premonitory factors of landslide dam failure caused by seepage: an experimental study. Geoenvironmental Disasters 6 (1), 17.

    48. Dai Z, Wang FW, Cheng Q, Wang Y, Yang HF, Lin Q, Yan K, Liu F, Li K (2019) A giant historical landslide on the eastern margin of the Tibetan Plateau. Bull Eng Geol Environ, 78 (3), 2055-2068.

    49. Wang FW (2019) Liquefactions caused by structure collapse and grain crushing of soils in rapid and long runout landslides triggered by earthquakes. 工程地质学报, 27 (1), 98-107.

    50. Zhang S, Wang FW (2019) Three-dimensional seismic slope stability assessment with the application of Scoops3D and GIS: a case study in Atsuma, Hokkaido. Geoenvironmental Disasters, 6:9.

    51. Zhang S, Li R, Wang FW, Iio A (2019) Characteristics of landslides triggered by the 2018 Hokkaido Eastern Iburi earthquake, Northern Japan. Landslides, 16 (9), 1691–1708.

    52. Wang FW, Okeke ACU, Kogure T, Sakai T, Hayashi H (2018) Assessing the internal structure of landslide dams subject to possible piping erosion by means of microtremor chain array and self-potential surveys. Engineering Geology 234, 11-26.

    53. Wang FW, Dai Z, Nakahara Y, Sonoyama T (2018) Experimental study on impact behavior of submarine landslides on undersea communication cables. Ocean Engineering, 148, 530-537.

    54. Wang FW, Dai Z, Okeke ACU, Mitani Y, Yang HF (2018) Experimental study to identify premonitory factors of landslide dam failures. Engineering Geology, 232, 123-134.

    55. Song K, Wang FW, Yi QL, Lu SQ (2018) Landslide deformation behavior influenced by water level fluctuations of the Three Gorges Reservoir (China). Engineering Geology, 247, 58-68.

    56. Dai Z, Wang FW, Cheng Q (2018) Deposit morphology of Luanshibao Landslide in Tibetan Plateau. Quarterly Journal of Engineering Geology and Hydrogeology 51 (1), 13-16.

    57. Dai Z, Wang FW, Cheng Q, Wang Y, Yang HF, Lin Q, Yan K, Liu F, Li K (2018) A giant historical landslide on the eastern margin of the Tibetan Plateau. Bull Eng Geol Environ, 1-14.

    58. Wang FW, Dai Z, Zhang S (2017) Experimental study on the motion behavior and mechanism of submarine landslides. Bull Eng Geol Environ 77(3):1117–1126.

    59. Dai Z, Wang FW, Q Cheng (2017) Deposit morphology of Luanshibao Landslide in Tibetan Plateau. Quarterly Journal of Engineering Geology and Hydrogeology. 

    60. Dai Z, Wang FW, Song K, Iio A (2017) A first look at a landslide triggered by the 2016 Kumamoto earthquake near the Aso Volcanological Laboratory. Quarterly Journal of Engineering Geology and Hydrogeology, 50, 111-116.

    61. Song K, Wang FW, Dai ZL, Iio A, Osaka O, Sakata S (2017) Geological characteristics of landslides triggered by the 2016 Kumamoto earthquake in Mt. Aso volcano, Japan. Bulletin of Engineering Geology and the Environment, pp 1–10.

    62. Wang FW, Miyajima M, R Dahal, M Timilsina, T Li, M Fujiu, Y Kuwada (2016) Effects of topographic and geological features on building damage caused by 2015.4. 25 Mw7. 8 Gorkha earthquake in Nepal: a preliminary investigation report. Geoenvironmental Disasters 3 (1), 1-17.

    63. Okeke ACU, Wang FW (2016) Critical hydraulic gradients for seepage-induced failure of landslide dams. Geoenvironmental Disasters 3:9.

    64. Okeke ACU, Wang FW (2016) Hydromechanical constraints on piping failure of landslide dams: an experimental investigation. Geoenvironmental Disasters 3:4.

    65. Yang HF, Wang FW, Vilímek V, Araiba K, Asano S (2015) Investigation of rainfall-induced shallow landslides on the northeastern rim of Aso caldera, Japan, in July 2012. Geoenvironmental Disasters, 2:20.

    66. Wang FW, Wu YH, Yang HF, Tanida Y and Kamei A (2015) Preliminary investigation of the 20 August 2014 debris flows triggered by a severe rainstorm in Hiroshima City, Japan. Geoenvironmental Disasters, 2:17.

    67. Yang HF, Wang FW, Miyajima K (2015) Investigation of shallow landslides triggered by 3 heavy rainfall during typhoon Wipha (2013), Izu Oshima Island, Japan. Geoenvironmental Disasters, 2:15.

    68. Faris F, Wang FW (2014) Stochastic analysis of rainfall effect on earthquake induced shallow landslide of Tandikat, West Sumatra, Indonesia. Geoenvironmental Disasters, 1:12.

    69. Wang FW, Sun P, Highland L, Cheng QG (2014) Key factors influencing the mechanism of rapid and long runout landslides triggered by the 2008 Wenchuan earthquake, China. Geoenvironmental Disasters, 1:1.

    70. Faris F, Wang FW (2014): Investigation of the initiation mechanism of an earthquake- induced landslide during rainfall: a case study of the Tandikat landslide, West Sumatra, Indonesia. Geoenvironmental Disasters, 1:4.

    71. Igwe O, Wang FW, Sassa K, Fukuoka H (2014) The laboratory evidence of phase transformation from landslide to debris flow. Geosciences Journal, 18(1):31-44.

    72. Wang FW, Muhammad Wafid AN, Zhang FY, Takeuchi A (2011). Tandikek and Malalak rapid and long runout landslide triggered by West Sumatra earthquake 2009 (M7.6) in Indonesia. Journal of the Japan Landslide Society, 48(4):29-34.

    73. Wang FW, Shan W, Guo Y, Takeuchi A (2010) Using vegetation as countermeasure to prevent shallow slope failure in a seasonally frozen area. Japanese Geotechnical Engineering magazine, 58(9):18-21 (in Japanese).

    74. Wang FW, Sassa K (2010) Landslide simulation by geotechnical model adopting a model for apparent friction changing. Physics and Chemistry of the Earth, 35(3-5):149-161.

    75. Sun P, Wang FW, Yin YP, Wu SR (2010) An experimental study on the mechanism of rapid long runout landslide triggered by Wenchuan earthquake. Seismology and Geology, 32(1):98-106.

    76. Boldini D, Wang FW, Sassa K, Tommasi P (2009) Application of large scale ring shear tests to the analysis of tsunamogenic landslides at Stromboli. Landslides, 6(3):231-240 .

    77. Hu MJ, Wang FW, Cheng QG (2009) Formation of tremendous Yigong landslide based on high-speed shear tests. 岩土工程学报, 31(10):1602-1606.

    78. Yin YP, Wang FW, Sun P (2009) Landslide hazards triggered by the 2008 Wenchuan earthquake, Sichuan, China. Landslides, 6(2):139-152.

    79. Wang FW, Q.G. Cheng, L. Highland, Miyajima M, H.B. Wang, C.G. Yan (2009) Preliminary investigations of some large- scale landslides triggered by the 2008 Sichuan earthquake. Landslides, 6(1):47-54.

    80. Luo XQ, Wang FW, Zhang ZH, Che AL (2008) Establishing a monitoring network for an impoundment-induced landslide in Three Gorges Reservoir Area, China. Landslides, 6(1), 27-38.

    81. Wang FW, Zhang YM, Huo ZT, Peng XM, Wang SM, Yamasaki S (2008) Mechanism for the rapid motion of the Qianjiangping landslide during reactivation by the first impoundment of the Three Gorges Dam Reservoir, China. Landslides, 5(4):379-386.

    82. Wang FW, Zhang YM, Huo ZT, Peng XM, Araiba K, Wang G (2008) Movement of the Shuping landslide in the first four years after the initial impoundment of the Three Gorges Dam Reservoir, China. Landslides, 5(3):321-330.

    83. Wang FW, Araiba K, Zhang YM, Huo ZT, Wang G, Peng XM (2008) Displacement monitoring on Shuping landslide in the Three Gorges Dam Reservoir area, China. J. of Japan Landslide Society, 44(2):68-74 .

    84. Wang FW, Araiba K, Zhang Y, Huo Z, Wang G, Peng X (2007) Displacement monitoring on Shuping landslide in the Three Gorges Dam Reservoir area, China. Journal of the Japan Landslide Society, 44 (6):406-412 (in Japanese).

    85. Wang FW, Shibata H (2007) Influence of soil permeability on rainfall-induced flowslides in laboratory flume tests. Canadian Geotechnical Journal, 44(9):1128-1136.

    86. Wang FW, Okuno T, Matsumoto T (2007) Deformation characteristics and influential factors for the giant Jinnosuke-dani landslide in the Haku-san Mountain area, Japan. Landslides, 4(1):19-31.

    87. Wang FW, Sassa K (2007) Initiation and traveling mechanisms of the May 2004 landslide – debris flow at Bettou-dani of the Jinnosuke-dani landslide, Haku-san Mountain, Japan. Soils and Foundations, 47(1):143-154.

    88. Wang FW, Zhang YM, Wang G, Peng XM, Huo ZT, Jin WQ, Zhu CQ (2007) Deformation features of the Shuping landslide Caused by Water Level Changes in Three Gorges Reservoir area, China. 岩石力学与工程学报, 26(3):509-517.

    89. Wang FW, Matsumoto T, Tanaka Y (2005) Two recent flowslides in Yamashina area, Kanazawa City, Japan. Landslides, 2(3):229-234.

    90. Wang FW (2005) Fluidization mechanisms and motion simulation on flowslides triggered by earthquake and rainfall. 岩石力学与工程学报, 24(10):1654-1661.

    91. Tanaka Y, Wang FW, Nakamura K, Matsumoto T (2005) Feature and sliding mechanism of a flowslide triggered by continual rainfall in Yamashina area, Kanazawa City, Japan. Journal of the Japan Landslide Society, 42(2) 34-43 (In Japanese with English abstract).

    92. Sassa K, Wang G, Fukuoka H, Wang FW, Ochiai T, Sugiyama M, Sekiguchi T (2004) Landslide risk evaluation and hazard zoning for rapid and long-travel landslides in urban development areas. Landslides, 1(3):221-235.

    93. Wang FW, Zhang YM, Huo ZT, Matsumoto T, Huang BL (2004) The July 14, 2003 Qianjiangping Landslide, Three Gorges Reservoir, China. Landslides, 1(2):157-162.

    94. Wang FW, Sassa K, Matsumoto T, Okuno T (2004) Sliding mechanism and motion prediction of flowslides in crushable soils. Journal of the Japan Landslide Society, 40(5) 377-388 (In Japanese with English abstract).

    95. Wang FW, Okuno T (2004) Deforming mechanism of the giant Jinnosuke-dani landslide in Haku-san mountainous area, Japan. Journal of Geological Hazards and Environment Preservation, 15(3):48-54.

    96. Okuno T, Wang FW, Matsumoto T (2004) The deforming style and influencing factors of the Giant Jinnosuke-Dani landslide in Haku-san mountainous area. Journal of the Japan Landslide Society, 41(1) 57-64 (In Japanese with English abstract) .

    97. Wang FW, Sassa K, Wang G (2003) Mechanism of the long runout Hiegaesi landslide triggered by heavy rainfall. Landslide News, No.14/15:15-18.

    98. Wang FW, Sassa K, Wang G (2002) Mechanism of a long-runout landslide triggered by the August 1998 heavy rainfall in Fukushima Prefecture, Japan. Engineering Geology, 63:169-185.

    99. Wang FW, Katsuro H, Matsumoto S, Matsumoto T Yokoyama M, Toda M (2001) Applicability of the Sarma’s, Morgenstern-Price’s and Janbu’s slope stability analysis method –A case study on the Tsuchikura landslide, Toyama Prefecture, Japan-. Journal of the Japan Landslide Society, 38(3) 107-107 (In Japanese with English abstract).

    100. Wang FW (2001) Mechanism of rapid landslides: Excess pore pressure generation caused by grain crushing. 长春科技大学学报, 31(1):64-69 (in Chinese with English abstract).

    101. Wang FW, Sassa K, Fukuoka H (2000) Geotechnical simulation test for the Nikawa landslide induced by 1995.1.17 Hyogoken-Nambu earthquake. Soils and Foundations, 40(1):35-46.

    102. Wang FW, Sassa K (2000) Relationship between grain crushing and excess pore pressure generation by sandy soils in ring-shear tests. Journal of Natural Disaster Science, 22(2):87-96.


  • 专利
    1. 模拟滑坡碎屑流侧蚀效应的滑槽模型试验装置及使用方法(2026)

    2. 模拟寒区高位远程滑坡至洪水灾害链的试验装置及方法(2026)

    3. 桩基载荷试验的解析方法(2004)

    4. 载荷传递装置(2004)



  1. 《地球物理勘探原理》(本科生)

  2. 《地球物理勘探技术》(硕士研究生)

  3. 《地质灾害动力学》(博士研究生)



日本工程院外籍院士

日本岛根大学名誉教授

国际地质灾害与减灾协会 理事长

国际学术刊物《Geoenvironmental Disasters》主编

联合国教科文组织讲席“地球环境灾害与减灾”首席科学家



    合作博士后:

    1. 闫孔明:2020.09-2023.10,博士毕业于西南交通大学,现为日本JSPS外国人特别研究员。

    2. 朱国龙:2020.11-2023.11,博士毕业于中国矿业大学(北京),就职于能环(三门峡)国际新材料有限公司。

    3. Kounghoon NAM:2020.11-2023.04(博士毕业于日本岛根大学,本硕毕业于韩国安东大学),就职于韩国安东大学。


    博士研究生:

    1.  2019级:赵子昕(直博生)(本科毕业于中国矿业大学(北京)地质工程专业)(本人担任副导师)。2025年6月毕业,就职于北京市怀柔区政府。

    2. 2020级:彭星亮(硕士毕业于中南大学应用地球物理专业)(本人担任副导师)。2025年6月毕业。

    3.  2021级:陈也 (硕博连读)(本科毕业于同济大学地质工程专业)

    4. 2021级:刘伟超 (直博)(本科毕业于长安大学地质工程专业)

    5. 2022级:张波 (直博)(本科毕业于同济大学地质工程专业)

    6. 2022级:马昊(硕士毕业于重庆大学地质工程专业)

    7.  2023级:冯有千(直博)(本科毕业于同济大学地质工程专业)

    8.  2024级:付子进(硕博连读)(本科毕业于中国地质大学(武汉)地质工程专业)

    9.  2025级:盛鹏(硕博连读)(本科毕业于同济大学结构工程专业))

    10. 2025级:刘鹏(硕士毕业于中国矿业大学地质工程专业)

    11. 2026级:曹生喆(硕博连读)(本科毕业于同济大学地质工程专业)

    12. 2026级:熊挺(硕士毕业于中国地质大学(武汉)地质工程专业)

    硕士研究生:

    1. 2021级:陈也(本科毕业于同济大学,2023年转博)

    2. 2021级:高杰(本科毕业于长安大学),2024年毕业,就职于雅江集团。

    3. 2022级:付子进(本科毕业于中国地质大学(武汉),2024年转博)

    4.  2023级:李  森(本科毕业于中国地质大学(北京))

    5.  2023级:盛  鹏(本科毕业于同济大学,2025年转博)

    6.  2024级:曹生喆(本科毕业于同济大学地质工程专业,2026年转博

    7.  2024级:尤琪(本科毕业于长安大学地质工程专业)

    8.  2025级:熊亚美(本科毕业于中国地质大学(武汉)地质工程专业)

    7.  2025级:宋豪(本科毕业于宁波大学工程管理专业)


    本科毕业研究学生(四年级):

    1. 2020年:陈也(免推同济硕士)

    2. 2021年:张波(免推同济直博)

    3. 2022年:冯有千(免推同济直博)

    4. 2022年:徐思源 (就职:中国建筑国际集团)

    5. 2023年:曹生喆 (免推同济硕士)

    6. 2026年:陈宿尧(考取同济硕士)



汪发武,同济大学特聘教授,日本工程院外籍院士,日本岛根大学名誉教授,现任国际地质灾害与减灾协会理事长、国际滑坡协会理事、中国岩石力学与工程学会名誉常务理事、国际学术期刊Geoenvironmental Disasters创刊主编等。长期从事地质灾害动力学研究,主持两项国家自然科学基金重点项目及多项日本国家级科研项目,发表原创性SCI论文110余篇。代表性成果包括:基于自编码深层神经网络技术建立了地震滑坡易发性评价模型,有效提高了地震滑坡的易发性预测精度;提出了滑坡运动过程中的“滑带土抗剪强度变化模型”,实现了对高速远程滑坡运动范围的准确预测等。