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  4. Applications of simulation technique on debris-flow hazard zone delineation: A case study in Hualien County, Taiwan
 
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Applications of simulation technique on debris-flow hazard zone delineation: A case study in Hualien County, Taiwan

Journal
Natural Hazards and Earth System Science
Journal Volume
10
Journal Issue
3
Pages
535-545
Date Issued
2010
Author(s)
Hsu, S.M.
Chiou, L.B.
Lin, G.F.
Chao, C.H.
Wen, H.Y.
GWO-FONG LIN  
DOI
10.5194/nhess-10-535-2010
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/435888
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-77950174414&doi=10.5194%2fnhess-10-535-2010&partnerID=40&md5=abfdfe56e535060d45ec8f5fb909de49
Abstract
Debris flows pose severe hazards to communities in mountainous areas, often resulting in the loss of life and property. Helping debris-flow-prone communities delineate potential hazard zones provides local authorities with useful information for developing emergency plans and disaster management policies. In 2003, the Soil and Water Conservation Bureau of Taiwan proposed an empirical model to delineate hazard zones for all creeks (1420 in total) with potential of debris flows and utilized the model to help establish a hazard prevention system. However, the model does not fully consider hydrologic and physiographical conditions for a given creek in simulation. The objective of this study is to propose new approaches that can improve hazard zone delineation accuracy and simulate hazard zones in response to different rainfall intensity. In this study, a two-dimensional commercial model FLO-2D, physically based and taking into account the momentum and energy conservation of flow, was used to simulate debris-flow inundated areas. Sensitivity analysis with the model was conducted to determine the main influence parameters which affect debris flow simulation. Results indicate that the roughness coefficient, yield stress and volumetric sediment concentration dominate the computed results. To improve accuracy of the model, the study examined the performance of the rainfall-runoff model of FLO-2D as compared with that of the HSPF (Hydrological Simulation Program Fortran) model, and then the proper values of the significant parameters were evaluated through the calibration process. Results reveal that the HSPF model has a better performance than the FLO-2D model at peak flow and flow recession period, and the volumetric sediment concentration and yield stress can be estimated by the channel slope. The validation of the model for simulating debris-flow hazard zones has been confirmed by a comparison of field evidence from historical debris-flow disaster data. The model can successfully replicate the influence zone of the debris-flow disaster event with an acceptable error and demonstrate a better result than the empirical model adopted by the Soil and Water Conservation Bureau of Taiwan.
SDGs

[SDGs]SDG7

[SDGs]SDG13

Other Subjects
accuracy assessment; computer simulation; coping strategy; damage; debris flow; disaster management; hazard assessment; model validation; natural hazard; numerical model; performance assessment; rainfall-runoff modeling; risk assessment; sensitivity analysis; Hualien; Taiwan
Type
journal article

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