All Issue

2026 Vol.59, Issue 7 Preview Page
31 July 2026. pp. 739-750
Abstract
References
1

Abt, S.R., Wittier, R.J., Taylor, A., and Love, D.J. (1989). “Human stability in a high flood hazard zone.” Water Resources Bulletin, Vol. 25, No. 4, pp. 881-890.

10.1111/j.1752-1688.1989.tb05404.x
2

Arrighi, C., Oumeraci, H., and Castelli, F. (2017). “Hydrodynmcis of pedestrians’ instability in flood waters.” Hydrology and Earth System Sciences, Vol. 21, No. 1, pp. 515-531.

10.5194/hess-21-515-2017
3

Cox, R.J., Shand, T.D., and Blacka, M.J. (2010). Australian rainfall and runoff revision project 10: Appropriate safety criteria for people, WRL Research Report 240, The University of New South Wales, Manly Vale, NSW, Australia, pp. 15-19.

4

Department of the Environment, Food and Rural Affaris (DEFRA) and Environment Agency (EA) (2006). Flood risks to people (Phase 2): Methodology. Defra Report, FD2321/TR1, London, UK, pp. 6-8.

5

Foster, D.N., and Cox, R.J. (1973). Stability of children on roads used as floodways. Technical Report No. 73/13, Water Research Laboratory, The University of New South Wales, Manly Vale, NSW, Australia, pp. 2-5

6

Guo, X., Wang, W., Fang, X., Gong, Y., Li, J., Wang, M., and Li, X. (2024). “Analysis of self-rescue possibilities for pedestrians in the aftermath of destabilization during a flood event.” Water, Vol. 16, No. 9, 1218.

10.3390/w16091218
7

Hamrick, J.M. (1992). A three-dimensional environmental fluid dynamics computer code: Theoretical and computational aspects, Special Report in Applied Marine Science and Ocean Engineering, 317, Virginia Institute of Marine Science, Gloucester Point, VA, U.S., pp. 7-9.

8

Karvonen, R.A., Hepojoki, H.K., Huhta, H.K., and Louhio, A. (2000). The use of physical models in dam-break flood analysis: Development of rescue actions based on dam-break flood analysis (RESCDAM). Final Report, Helsinki University of Technology & Finnish Environment Institute, Helsinki, Finland.

9

Kim, M., Park, J., Lee, I., Park, I. (2025). “Pedestrian stability assessment and applicability analysis based on human model experiments in inundated flows” Journal of Korea Water Resources Association, Vol. 58, No. 6, pp. 459-468.

10.3741/JKWRA.2025.58.6.459
10

Korea Disease Control and Prevention Agency (KDCA) (2017). Korean growth charts for children and adolescents. pp. 10-11.

11

Kvočka, D., Falconer, R.A., and Bray, M. (2016). “Flood hazard assessment for extreme flood events.” Natural Hazards, Vol. 84, No. 3, pp. 1569-1599.

10.1007/s11069-016-2501-z
12

Lazzarin, T., Viero, D.P., and Defina, A. (2022). “Flood damage functions based on a single physics- and data-based impact parameter that jointly accounts for water depth and velocity.” Journal of Hydrology, Vol. 606, 127534.

10.1016/j.jhydrol.2022.127485
13

Lin, Z., Hu, Z., and Lin, H. (2024). “Flow pattern and escape hazards of people from flood intrusion into the staircase of underground spaces with multiple rest platforms.” Buildings, Vol. 14, No. 4, 941.

10.3390/buildings14040941
14

Martínez-Gomariz, E., Gómez, M., and Russo, B. (2016). “Experimental study of the stability of pedestrians exposed to urban pluvial flooding.” Natural Hazards, Vol. 82, No. 2, pp. 1259-1278.

10.1007/s11069-016-2242-z
15

Nakasaka, Y., and Ishigaki, T. (2021). “Vulnerability to mega underground inundation and evacuation assuming devastating urban flood.” Journal of Disaster Research, Vol. 16, No. 3, pp. 321-328.

10.20965/jdr.2021.p0321
16

National Health Insurance Service (NHIS) (2022). 2022 National health screening statistical yearbook.

17

Park, I., Seong, H., Ryu, Y., and Rhee, D.S. (2018). “Measuring inundation depth in a subway station using the laser image analysis method.” Water, Vol. 10, No. 11, 1558.

10.3390/w10111558
18

Postacchini, M., Bernardini, G., D’Orazio, M., and Quagliarini, E. (2021). “Human stability during floods: Experimental tests on a physical model simulating human body.” Safety Science, Vol. 137, 105153.

10.1016/j.ssci.2020.105153
19

Russo, B., Gomz, M., Macchione, F. (2013). Pedestrian hazard criteria for flooded urban areas. Natural Hazards, Vol. 69, pp. 251-265.

10.1007/s11069-013-0702-2
20

Shin, J., Kim, M., Cho, I., Park, I. (2023). Comparative analysis of inundation flow patterns and flood risk assessment methods within subway stations. Journal of Water Resources Association. Vol. 56, No. 10, pp. 667-678.

10.3741/JKWRA.2023.56.10.667
21

Xia, J., Falconer, R.A., Wang, Y., and Xiao, X. (2014). “New criterion for the stability of a human body in floodwaters.” Journal of Hydraulic Research, Vol. 52, No. 1, pp. 93-104.

10.1080/00221686.2013.875073
22

Yee, M. (2003). Human stability in floodways. Undergraduate honors Thesis, School of Civil and Environmental Engineering, University of New South Wales, Sydney, Australia.

23

Zhu, Q., Wu, X., Chen, Y., and Li, B. (2023). “Hydrodynamic instability of human body models in urban flooding scenarios.” Journal of Hydraulic Research, Vol. 61, No. 4, pp. 527-539.

Information
  • Publisher :KOREA WATER RESOURECES ASSOCIATION
  • Publisher(Ko) :한국수자원학회
  • Journal Title :Journal of Korea Water Resources Association
  • Journal Title(Ko) :한국수자원학회 논문집
  • Volume : 59
  • No :7
  • Pages :739-750
  • Received Date : 2026-04-07
  • Revised Date : 2026-06-02
  • Accepted Date : 2026-06-08