Fig. 1. Schematic diagram of the dredged sediment management system
Fig. 2. Systematic diagram of the dredged sediment management system
Fig. 3. Photographs of the study area
Fig. 4. Location of test bed for the dredged sediment management system
Fig. 5. Grain size distribution curve of the soil in the study area
Fig. 6. Photographs of debris barrier in the study area
Fig. 7. Dredged sediments management system installed in the study area
Fig. 8. Maintenance program of the management system
Fig. 9. Precipitation data in the study area
Fig. 10. Variation of water level behind debris barrier
Fig. 11. Variation of weight of the dredged sediments behind debris barrier
Fig. 12. Variation of height of the dredged sediments behind debris barrier
Fig. 13. Variation of water level and weight of sediments behind debris barrier according to measuring times
Fig. 14. Monitoring results considering the management criteria
Table 1. Measurement units of the dredged sediment management system
Table 2. Engineering properties of soil obtained from the study area
참고문헌
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- Song, Y. S., Hong, W. P. and Woo, K. S. (2012) "Behavior and analysis of stabilizing piles installed in a cut slope during heavy rainfall", Engineering Geology, Vol.129-130, pp.56-67. https://doi.org/10.1016/j.enggeo.2012.01.012
- Viet, T. T., Lee, G. and Kim, M. S. (2016) "Shallow landslide assessment considering the influence of vegetation cover." Journal of the Korean Geo-Environmental Society, Vol.17, No.4, pp.17-31.
- Yun, J. M. Song, Y. S. Park, G. J. and Yoo, S. K. (2017) "Prediction of landslide probability around railway using decision tree model." Journal of the Korean geosynthetics society, Vol.16, No.4, pp.129-137. https://doi.org/10.12814/JKGSS.2017.16.4.129
피인용 문헌
- 산림소유역 토사유출량에 의한 사방댐 시공적지 예측기법 개발 vol.109, pp.4, 2020, https://doi.org/10.14578/jkfs.2020.109.4.438