Catchment slope distribution significantly controls rainfall-triggered landslide modeling, in both direct and indirect ways. Slope directly determines the soil volume associated with instability. Indirectly, it affects the subsurface lateral redistribution of soil moisture across the basin, which in turn determines the water pore pressure conditions that impact slope stability. It is thus clear that the accuracy in reproducing slope distribution may be crucial in slope stability analysis. The resolution of Digital Elevation Model (DEM) regulates the description of topography. The correlation between raster resolution and landslide model outputs has been investigated in literature, both in terms of landslide susceptibility and landslide dynamics. Results demonstrate that the optimal DEM resolution may not necessarily exclude the use of coarser DEMs. This study evaluates the influence of DEM resolution on the slope stability analysis by using a distributed eco-hydrological-landslide model, which implements a Triangulated Irregular Network (TIN) to describe the topography; as well, the model is capable of evaluating vegetation dynamics and predicting shallow landslides triggered by rainfall.

DEM-resolution control on rainfall-triggered landslide modeling within a triangulated network-based model

E. Arnone
;
2019-01-01

Abstract

Catchment slope distribution significantly controls rainfall-triggered landslide modeling, in both direct and indirect ways. Slope directly determines the soil volume associated with instability. Indirectly, it affects the subsurface lateral redistribution of soil moisture across the basin, which in turn determines the water pore pressure conditions that impact slope stability. It is thus clear that the accuracy in reproducing slope distribution may be crucial in slope stability analysis. The resolution of Digital Elevation Model (DEM) regulates the description of topography. The correlation between raster resolution and landslide model outputs has been investigated in literature, both in terms of landslide susceptibility and landslide dynamics. Results demonstrate that the optimal DEM resolution may not necessarily exclude the use of coarser DEMs. This study evaluates the influence of DEM resolution on the slope stability analysis by using a distributed eco-hydrological-landslide model, which implements a Triangulated Irregular Network (TIN) to describe the topography; as well, the model is capable of evaluating vegetation dynamics and predicting shallow landslides triggered by rainfall.
2019
978-618-84419-0-3
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11390/1170217
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