Physically-based modelling of granular flows with Open Source GIS
Computer models, in combination with Geographic Information Sciences (GIS), play an important role in up-to-date studies of travel distance, impact area, velocity or energy of granular flows (e.g. snow or rock avalanches, flows of debris or mud). Simple empirical-statistical relationships or mass po...
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Online Access: | http://www.nat-hazards-earth-syst-sci.net/12/187/2012/nhess-12-187-2012.pdf |
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doaj-640108dd01f744f5a8fd8236e9f1bdab2020-11-24T21:58:22ZengCopernicus PublicationsNatural Hazards and Earth System Sciences1561-86331684-99812012-01-0112118720010.5194/nhess-12-187-2012Physically-based modelling of granular flows with Open Source GISM. MergiliK. SchratzA. OstermannW. FellinComputer models, in combination with Geographic Information Sciences (GIS), play an important role in up-to-date studies of travel distance, impact area, velocity or energy of granular flows (e.g. snow or rock avalanches, flows of debris or mud). Simple empirical-statistical relationships or mass point models are frequently applied in GIS-based modelling environments. However, they are only appropriate for rough overviews at the regional scale. In detail, granular flows are highly complex processes and physically-based, distributed models are required for detailed studies of travel distance, velocity, and energy of such phenomena. One of the most advanced theories for understanding and modelling granular flows is the Savage-Hutter type model, a system of differential equations based on the conservation of mass and momentum. The equations have been solved for a number of idealized topographies, but only few attempts to find a solution for arbitrary topography or to integrate the model with GIS are known up to now. The work presented is understood as an initiative to integrate a fully physically-based model for the motion of granular flows, based on the extended Savage-Hutter theory, with GRASS, an Open Source GIS software package. The potentials of the model are highlighted, employing the Val Pola Rock Avalanche (Northern Italy, 1987) as the test event, and the limitations as well as the most urging needs for further research are discussed.http://www.nat-hazards-earth-syst-sci.net/12/187/2012/nhess-12-187-2012.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
M. Mergili K. Schratz A. Ostermann W. Fellin |
spellingShingle |
M. Mergili K. Schratz A. Ostermann W. Fellin Physically-based modelling of granular flows with Open Source GIS Natural Hazards and Earth System Sciences |
author_facet |
M. Mergili K. Schratz A. Ostermann W. Fellin |
author_sort |
M. Mergili |
title |
Physically-based modelling of granular flows with Open Source GIS |
title_short |
Physically-based modelling of granular flows with Open Source GIS |
title_full |
Physically-based modelling of granular flows with Open Source GIS |
title_fullStr |
Physically-based modelling of granular flows with Open Source GIS |
title_full_unstemmed |
Physically-based modelling of granular flows with Open Source GIS |
title_sort |
physically-based modelling of granular flows with open source gis |
publisher |
Copernicus Publications |
series |
Natural Hazards and Earth System Sciences |
issn |
1561-8633 1684-9981 |
publishDate |
2012-01-01 |
description |
Computer models, in combination with Geographic Information Sciences (GIS), play an important role in up-to-date studies of travel distance, impact area, velocity or energy of granular flows (e.g. snow or rock avalanches, flows of debris or mud). Simple empirical-statistical relationships or mass point models are frequently applied in GIS-based modelling environments. However, they are only appropriate for rough overviews at the regional scale. In detail, granular flows are highly complex processes and physically-based, distributed models are required for detailed studies of travel distance, velocity, and energy of such phenomena. One of the most advanced theories for understanding and modelling granular flows is the Savage-Hutter type model, a system of differential equations based on the conservation of mass and momentum. The equations have been solved for a number of idealized topographies, but only few attempts to find a solution for arbitrary topography or to integrate the model with GIS are known up to now. The work presented is understood as an initiative to integrate a fully physically-based model for the motion of granular flows, based on the extended Savage-Hutter theory, with GRASS, an Open Source GIS software package. The potentials of the model are highlighted, employing the Val Pola Rock Avalanche (Northern Italy, 1987) as the test event, and the limitations as well as the most urging needs for further research are discussed. |
url |
http://www.nat-hazards-earth-syst-sci.net/12/187/2012/nhess-12-187-2012.pdf |
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