Fig. 1. Comparison of flow direction methods for contributing area calculation
Fig. 2. Infinity flow direction algorithm
Fig. 3. Hydrologic unit map of study area
Fig. 4. Slope of the sub-catchments (unit: °)
Fig. 5. Hydraulic conductivity distribution
Fig. 6. Effective soil depth distribution
Fig. 7. Soil unit weight distribution
Fig. 8. Soil cohesion distribution
Fig. 9. Soil friction angle distribution
Fig. 10. Root cohesion distribution
Fig. 11. Spacial distribution of maximum rainfall with year
Fig. 12. Spacial distribution of hazard grade classification in steep slope with year
Fig. 13. Spacial distribution of average landslide hazard grade
Fig. 14. Spacial distribution of average landslide hazard gradewith administration area
Table 1. Resently landslide occurrence with year (e-나라지표, 2018)
Table 2. Facet elevation and factors for slope and angle calculations (Tarboton, 1997)
Table 3. Roots tensile strength with major species (MPa)
Table 4. Roots cohension with forest types (MPa)
Table 5. Root cohesion based on the administrative units (MPa)
Table 6. The number by causes of landslide occurrence in Joseon dynasty (Lee et al., 2013)
Table 7. Current state of landslide with administration area
참고문헌
- e-나라지표, 산사태피해현황, 2018.01.09, www.index.go.kr/potal/main/EachDtlPageDetail.do?idx_cd=1311
- Acharya, G., De Smedt, F. and Long, N. T. (2006), Assessing landslide hazard in GIS: a case study from Rasuwa, Nepal, Bulletin of Engineering Geology and the Environment, Vol. 65, No. 1, pp. 99-107. https://doi.org/10.1007/s10064-005-0025-y
- Anderson, M. G., Colison, A. J. C., Hartshorne, J., Lloyd, D. M. and Park, A. (1996), Developments in slope hydrology-stabilty modeling for tropical slopes, Advances in Hillslope Processes, Wiley, pp. 79-821.
- Baum, R. L., Savage, W. Z. and Godt, J. W. (2002), TRIGRS A Fortran Program for Transient Rainfal Infiltration and Grid-Based Regional Slope-Stabilty Analysis, U.S. Geological Survey, Open-file Report 02-0424, p. 27.
- Beven, K. J. and Kirkby, M. J. (1979), A physically based, variable contributing area model of basin hydrology, Hydrological Sciences Bulletin, 24, pp. 43-69. https://doi.org/10.1080/02626667909491834
- Borga, M., G. Dalla Fontana. and F. Cazorzi. (2002), Analysis of topographic and climatic control on rainfall�triggered shallow landsliding using a quasi-dynamic wetness index, Journal of Hydrology 268, pp. 56-71. https://doi.org/10.1016/S0022-1694(02)00118-X
- Choi, J. R. (2010), Assessment of potential landslides in naerin watershed: linking eco-hydrology model and stability model, Master's thesis, Gangwon University, pp. 1-70 (In Korean).
- Han, J. Y. (2003), Digital terrain analysis for the prediction of soil moisture and development of dynamic wetness index, Master's thesis, Pusan University, pp. 1-71 (In Korean).
- Jeon, G. W. and Oh, C. Y. (2014), Risk analysis of debris flow using a probability based method in GIS -Inje, Gangwon-do, Korea, Crisisonomy, Vol. 10, No. 1, pp. 197-209 (In Korean).
- Jung, K. W. (2010), Studies on the causal characteristics of landslide and the development of hazard prediction map for landslide in Gyeongsangbuk-Do Province, Korea, Ph.D dissertation, Kyungpook National University, pp. 1-133 (In Korean).
- Kim, M. G. (2004), GIS landslide hazard mapping using root strength reinforcement model, Master's thesis, Sungkyunkwan University, pp. 1-42 (In Korean).
- Lee, C. W., Seo, J. P. and Kang, Y. H. (2013), Analysis of landslide characteristic during Joseon dynasty through historical literature survey, Journal of Korean Society Hazard Mitigation, Vol. 13, No. 6, pp. 161-165 (In Korean). https://doi.org/10.9798/KOSHAM.2013.13.6.161
- Lee, I. M., Sung, S. K. and Lim, C. M. (1991), An experimental study on the effect of vegetation roots on slope stability of hillside slopes, Journal of Korean Geotechnical Society, Vol. 7, No. 2, pp. 51-66 (In Korean).
- Lee, G. H., Oh, S. R., An, H. U. and Jung, K. S. (2012a), A comparative analysis on slope stability using specific catchment area calculation, Journal of Korea Water Resources Association, Vol. 45, No. 7, pp. 643-656 (In Korean). https://doi.org/10.3741/JKWRA.2012.45.7.643
- Lee, S. R. (1999), Development and application of landslide susceptibility analysis techniques using Geographic Information System (GIS), Ph.D dissertation, Yeunse University, pp. 1-163 (In Korean).
- Lee, S. W., Kim, G. H., Yune, C. Y., Ryu, H. J. and Hong, S. J. (2012b), Development of landslide-risk prediction model thorough database construction, Journal of Korean Geotechnical Society, Vol. 28, No. 4, pp. 23-33 (In Korean). https://doi.org/10.7843/kgs.2012.28.4.23
- Montgomery, D. R. and Dietrich, W. E. (1994), A physically based model for the topographic control on shallow landsliding, Water Resources Research, Vol. 30, No. 4, pp. 1153-1171. https://doi.org/10.1029/93WR02979
- National Disaster Management Institute (2003), Slope Failure Disaster Research using Geographic Information System, p. 80 (In Korean).
- O'Callaghan, J. F. and Mark, D. M. (1984), The extraction of drainage networks from digital elevation data, Computer Vision, Graphics and Image Processing, Vol. 28, pp. 328-344.
- O'Loughlin, E. M. (1986), Prediction of surface saturation zones in natural catchments by topographic analysis, Water Resources Research, Vol. 22, No. 5, pp. 794-804. https://doi.org/10.1029/WR022i005p00794
- Oh, S. R. and Lee, G. H. (2014), Slope stability analysis at catchment scale using spatially-distributed wetness index, Journal of Korean Geographers, Vol. 3, No. 2, pp. 111-126 (In Korean). https://doi.org/10.25202/JAKG.3.2.3
- Pack, R. T., Tarboton, D. G. and Godwin, C. N. (1998), The SINMAP aproach to terrain stability mapping, proceedings-international congress of the international association for engineering geology and the environment, Balkema, Roterdam, Netherlands, pp. 157-165.
- Quinn, P., Beven, K., Chevallier, P. and Planchon, O. (1991), The prediction of hillslope flow paths for distributed hydrological modelling using digital terrain models, Hydrological Processes, Vol. 5, pp. 59-79. https://doi.org/10.1002/hyp.3360050106
- Rawls, W. J. and Brakensiek, D. L. (1985), Prediction of soil water properties for hydrologic modeling, Watershed Management in the Eighties, in Jones, E and Ward, T.J. eds., Proceedings of a Symposium ASCE, New York, pp. 293-299.
- Rawls, W. J., Brakensiek, D. L. and Miller, N. (1983), Greenampt infiltration parameters from soil data, Journal of Hydraulic Engineering, Vol. 109, No. 1, pp. 62-70. https://doi.org/10.1061/(ASCE)0733-9429(1983)109:1(62)
- Ray, R. L. and De Smedt, F. (2009), Slope stability analysis using GIS on a regional scale: a case study from Dhalding, Nepal, Environmental Geology, Vol. 57, No. 7, pp. 1603-1611. https://doi.org/10.1007/s00254-008-1435-5
- Simoni, S., Zanoti, F., Bertoldi, G. and Rigon, R. (2008), Modeling the probabilty of ocurence of shallow landslides and channelized debris flows using GEOtop FS, Hydrological Proceedings, Vol. 2, pp. 532-545.
- Tarboton, D. (1997), A new method for the determination of flow directions and upslope areas in grid digital elevation models, Water Resources Research, Vol. 33, pp. 309-319. https://doi.org/10.1029/96WR03137
- Wu, T. H., McKinnell, W. P. III. and Swanston, D. N. (1979), Strength of tree roots and landslides on prince of wales Island, Alaska, Canadian Journal of Geotechnical Research, Vol. 16, No. l, pp. 19-33. https://doi.org/10.1139/t79-003
- Yang, I. T., Chun, K. S., Park, J. K. and Lee, S. Y. (2007), An estimation to landslide vulnerable area of rainfall condition using GIS, Journal of the Korean Society for Geospatial Information Science, Vol. 15, No. 1, pp. 39-46 (In Korean).