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http://dx.doi.org/10.9720/kseg.2015.4.439

Field Investigation of Debris Flow Hazard Area on the Roadside and Evaluating Efficiency of Debris barrier  

Lee, Jong Hyun (Korea Institute of Civil Engineering and Building Technology)
Lee, Jung Yub (Korea Dyeing & Finishing Technology Institute)
Yoon, Sang Won (Korea Institute of Civil Engineering and Building Technology)
Oak, Young Suk (Korea Institute of Civil Engineering and Building Technology)
Kim, Jae Jeong (Korea Institute of Civil Engineering and Building Technology)
Kim, Seung Hyun (Korea Institute of Civil Engineering and Building Technology)
Publication Information
The Journal of Engineering Geology / v.25, no.4, 2015 , pp. 439-447 More about this Journal
Abstract
In this study, specific sections vulnerable to debris flow damage were selected, and a complete enumeration survey was performed for the sections with debris flow hazards. Based on this, the characteristics of the sections with debris flow hazards and the current status of actions against debris flow were examined, and an efficient installation plan for a debris flow damage prevention method that is required in the future was suggested. The results indicated that in the Route 56 section where the residential density is relatively higher between the two model survey sections, facilities for debris flow damage reduction were insufficient compared to those in the Route 6 section which is a mountain area. It is thought that several sites require urgent preparation of a facility for debris flow damage reduction. In addition, a numerical analysis showed that for debris barriers installed as a debris flow damage prevention method, distributed installation of a number of small-scale barriers facilities within a valley part was more effective than single installation of a large-scale debris barrier at the lower part of a valley.
Keywords
debris flow; debris avalanche; field investigation; discrete element method; debris flow reducing facility;
Citations & Related Records
연도 인용수 순위
  • Reference
1 Gangwon Province, 2013, Gangwon Statistical Information, Retrieved from http://stat.gwd.go.kr.
2 Itasca, 1995, PFC 2D User Manual, Itasca Consulting Group, Minneapolis.
3 Koh, H. J., Kim, S. W., and Lee, S. R., 2011, Geological report of the Anheungri sheet (scale: 1:50,000), Korea Institute of Geoscience and Mineral Resources, 54p (in Korean with English abstract).
4 Korea Institute of Civil engineering and Building Technology (KICT), 2015, Operation of road cut slope management system in 2014, Research report, Ministry of Land, Infrastructure and Transport, 297-311 (in Korean).
5 Park, H. I., Jang, K. H., Ji, J. M., and Ko, I. S., 1974, Geological map of Korea: Nae Peong(1:50,000), Korea Institute of Geoscience and Mineral Resources, 13p (in Korean with English abstract).
6 Salciarini, D., Tamagnini, C., and Conversini, P., 2010, Discrete Element Modelling of Debris Avalanches-Resisting Earthfill Barriers, Physics and Chemistry of the Earth, 35, 172-181.   DOI
7 Son, C. M., Kim, Y. K., Kim, S. W., and Kim, H. S., 1975, Geological map of Korea: Hong Cheon(1:50,000), Korea Institute of Geoscience and Mineral Resources, 23p (in Korean with English abstract).
8 Swanston, D. N. and Swanson, E. J., 1976, Timber harvesting, masserosion, and steepland forest geomorphology in the Pacific Northwest, Geomorphology and engineering, 199-221.
9 Takahashi, T., 1981, Debris flow, Annual Review of Fluid Mechanics, 13, 57-77.   DOI
10 Won, C. K., Chi, J. M., Jeong, J. G., Lee, M. W., and Kim, W. S., 1989, Geological map of Korea: Gap Chon (1:50,000), Korea Institute of Geoscience and Mineral Resources, 19p (in Korean with English abstract).