Monitored transition from sagging to sliding during deep-seated gravitational slope deformation, Akatani-nishi, Japan

被引:1
|
作者
Yamamoto, Nozomi [1 ,2 ]
Ishii, Yasuo [1 ]
Hirata, Ryo [1 ,3 ]
Tetsuka, Sakiko [1 ,4 ]
Yamada, Taku [5 ,6 ]
机构
[1] Publ Works Res Inst, Tsukuba, Japan
[2] Oyo Co Ltd, Tsukuba, Japan
[3] Minist Land Infrastruct Transport & Tourism, Tsukuba, Japan
[4] Nippon Koei Co Ltd, Tsukuba, Japan
[5] Minist Land Infrastruct Transport & Tourism, Nara, Japan
[6] Publ Works Res Inst, Nara, Japan
关键词
DSGSD; Landslide; Sliding; Sagging; Subsurface measurement; TECTONIC FEATURES; CENTRAL APENNINES; LANDSLIDE; CONSTRAINTS; MECHANISMS; CALABRIA; FAILURE;
D O I
10.1007/s10346-023-02107-6
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
To clarify the mechanism of deep-seated gravitational slope deformation (DSGSD), we investigated crushed rocks and subsurface deformation in a slope southwest of Akatani landslide, in Gojo city, Japan, on which a deep-seated catastrophic rapid landslide occurred in 2011. We analyzed subsurface deformation from 2017 to 2022 using monthly inclinometer data from three 85-90 m deep cored boreholes. Crushed rocks were investigated based on visual observations of the core. We examined the fractures of rock in the borehole wall based on borehole camera images. The inclinometer measurements within the DSGSD slope indicated that sliding occurred in the upper slope, and sagging occurred in the mid-slope, with two sliding surfaces identified at depths of 47.5 and 54.5 m. At a depth of 47.5 m, the average annual displacement increased by one order of magnitude when the groundwater level rose remarkably due to rainfall. This suggests that the movement of slope transitioned from sagging to sliding under the action of rising groundwater in the mid-slope. There was more crushed rock in the cores from the upper slope, where sliding occurs, than in the cores from the mid-slope, where sagging occurs. The fractures of rock by the number and width of the cracks were also greater in the upper slope cores than in the mid-slope cores. Our results support that the sliding progressed from the head to the toe of the slope.
引用
收藏
页码:2243 / 2255
页数:13
相关论文
共 50 条
  • [21] A COMBINED GNSS-DINSAR-IRT STUDY FOR THE CHARACTERIZATION OF A DEEP-SEATED GRAVITATIONAL SLOPE DEFORMATION
    Pappalardo G.
    Mineo S.
    Cappadonia C.
    Martire D.D.
    Calcaterra D.
    Tammaro U.
    Rotigliano E.
    Agnesi V.
    Tammaro, Umberto, 1600, Sapienza Universita Editrice : 151 - 162
  • [22] Numerical study on deep-seated gravitational slope deformation in a shale-dominated dip slope due to river incision
    Hou, YanLi
    Chigira, Masahiro
    Tsou, Ching-Ying
    ENGINEERING GEOLOGY, 2014, 179 : 59 - 75
  • [23] Development of deep-seated gravitational slope deformation on a shale dip-slope: Observations from high-quality drill cores
    Chigira, M.
    Hariyama, T.
    Yamasaki, S.
    TECTONOPHYSICS, 2013, 605 : 104 - 113
  • [24] Gravitational and tectonic stress states within a deep-seated gravitational slope deformation near the seismogenic Periadriatic Line fault
    Baron, Ivo
    Sokol, Lubos
    Melichar, Rostislav
    Plan, Lukas
    ENGINEERING GEOLOGY, 2019, 261
  • [25] Deep-Seated Gravitational Slope Deformation in Greywacke Rocks of the Tararua Range, North Island, New Zealand
    McLean, M. C.
    Brideau, M-A
    Augustinus, P. C.
    ENGINEERING GEOLOGY FOR SOCIETY AND TERRITORY, VOL 2: LANDSLIDE PROCESSES, 2015, : 559 - 564
  • [26] Impact of Deep-seated Gravitational Slope Deformation on urban areas and large infrastructures in the Italian Western Alps
    Cignetti, M.
    Godone, D.
    Zucca, F.
    Bertolo, D.
    Giordan, D.
    SCIENCE OF THE TOTAL ENVIRONMENT, 2020, 740 (740)
  • [27] Stress-strain-time numerical modelling of a deep-seated gravitational slope deformation: Preliminary results
    Apuani, Tiziana
    Masetti, Marco
    Rossi, Marcello
    QUATERNARY INTERNATIONAL, 2007, 171-72 : 80 - 89
  • [28] THE DECEMBER 1982 ANCONA LANDSLIDE - A CASE OF DEEP-SEATED GRAVITATIONAL SLOPE DEFORMATION EVOLVING AT UNSTEADY RATE
    COLTORTI, M
    DRAMIS, F
    GENTILI, B
    PAMBIANCHI, G
    CRESCENTI, U
    SORRISOVALVO, M
    ZEITSCHRIFT FUR GEOMORPHOLOGIE, 1985, 29 (03): : 335 - 345
  • [29] Response of a large deep-seated gravitational slope deformation to meteorological, seismic, and deglaciation drivers as measured by InSAR
    Rabus, Bernhard
    Engelbrecht, Jeanine
    Clague, John J.
    Donati, Davide
    Stead, Doug
    Francioni, Mirko
    FRONTIERS IN EARTH SCIENCE, 2022, 10
  • [30] Distribution of gravitational slope deformation and deep-seated landslides controlled by thrust faults in the Shimanto accretionary complex
    Arai, Noriyuki
    Chigira, Masahiro
    ENGINEERING GEOLOGY, 2019, 260