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Behavior of failure of agricultural reservoir embankment due to overtopping

월류에 의한 저수지 제체의 붕괴 거동

  • Lee, Dal-Won (Dept. of Agricultural and Rural Engineering, Chungnam National University) ;
  • Noh, Jae-Jin (Dept. of Agricutural Engineering, Chungnam National University)
  • 이달원 (충남대학교 지역환경토목학과) ;
  • 노재진 (충남대학교 대학원)
  • Received : 2012.09.05
  • Accepted : 2012.09.21
  • Published : 2012.09.30

Abstract

In this study, an experiment with large-scale model was performed according to raising embankment in order to investigate the behaviour of failure due to overtopping. The pore water pressure, earth pressure and settlement by high water level, a rapid drawdown and overtopping were compared and analyzed. Also, seepage analysis and slope stability analysis were performed for steady state and transient conditions. The pore water pressure and earth pressure for inclined core type showed high value at the base of the core, but they showed no infiltration by leakage. The pore water pressure and earth pressure by overtopping increased at the upstream slope and core, it is considered a useful data that can accurately estimate the possibility of failure of the reservoir. The behavior of failure due to overtopping was gradually enlarged towards the downstream slope from reservoir crest, and the inclined core after the raising embankment was influenced significantly to prevent the reservoir failure. The pore water pressure distribution for steady state and transient condition showed positive (+) pore water pressure on the upstream slope, it was gradually changed negative (-) pore water pressure on the downstream slope. The pore water pressure by overtopping showed a larger than the high water level at the downstream slope, it was likely to be the piping phenomenon because the hydraulic gradients showed largely at the inclined core and reservoir crest. The safety factor showed high at the steady state, and transient conditions did not show differences depending on the rapid drawdown.

Keywords

References

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Cited by

  1. Behavior of Failure for Embankment and Spillway Transitional Zone of Agriculture Reservoirs due to Overtopping vol.56, pp.1, 2014, https://doi.org/10.5389/KSAE.2014.56.1.071
  2. Review and Improvement Direction of the Riprap Design Standard for Fill Dams in Korea vol.25, pp.8, 2012, https://doi.org/10.1007/s12205-021-1078-6