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  4. Impact dynamics of granular debris flows based on a small-scale physical model
 

Impact dynamics of granular debris flows based on a small-scale physical model

URI
https://arbor.bfh.ch/handle/arbor/36455
Version
Published
Date Issued
2023
Author(s)
Scheidl, Christian
Friedl, Caroline
Reider, Lukas
Wernhart, Susanna
Fuchs, Anna-Lisa
Dankwerth, Anna Lisa
Nagl, Georg
Kaitna, Roland
Proske, Dirk  
Type
Article
Language
English
Abstract
The peak pressure of a granular debris flow at low Froude conditions can be calculated with knowledge of the stress anisotropy and the bulk density as well as the run-up height at impact. Based on a small-scale physical model, measurements of stress anisotropy and flow density values at impact are presented and applied to existing run-up prediction models, and further compared with back-calculated run-up coefficients from measured maximum impact pressures. For this purpose, we conducted 17 experiments with impact measurements and six experiments without impact measurements at Froude numbers, ranging from 0.84 to 2.41. Our results indicate that run-up heights are best reproduced by predictive models, either based on energy or mass and moment conservation, when anisotropic stress conditions, found in this study to range from 1.2 to 5.0, and bulk density variations due to impact, ranging in this study from 0.8 to 2.3, are considered. The influence of stress anisotropy and density variation on the run-up prediction differs, depending on the modelling approach. For the calculation of run-up heights based on the energy conservation concept, the influence of stress anisotropy becomes more significant with increasing Froude number, whereas for models based on mass and momentum conservation, bulk density variations have a greater influence on the estimation of the potential run-up.
Subjects
TA Engineering (General). Civil engineering (General)
TC Hydraulic engineering. Ocean engineering
DOI
10.24451/arbor.20476
https://doi.org/10.24451/arbor.20476
Publisher DOI
10.1007/s11440-023-02116-8
Journal or Serie
Acta Geotechnica
ISSN
1861-1125
Publisher URL
https://link.springer.com/article/10.1007/s11440-023-02116-8?utm_source=rct_congratemailt&utm_medium=email&utm_campaign=oa_20231121&utm_content=10.1007/s11440-023-02116-8
Organization
Architektur, Holz- und Bau  
AHB Lehre  
Geotechnik und Naturereignisse  
Verkehrsinfrastruktur  
Fachgruppe Geotechnik und Spezialtiefbau FGGS  
Fachgruppe Mobilität und Verkehrsinfrastruktur FGMV  
Volume
19
Issue
6
Publisher
Springer
Submitter
Proske, Dirk
Citation apa
Scheidl, C., Friedl, C., Reider, L., Wernhart, S., Fuchs, A.-L., Dankwerth, A. L., Nagl, G., Kaitna, R., & Proske, D. (2023). Impact dynamics of granular debris flows based on a small-scale physical model. In Acta Geotechnica (Vol. 19, Issue 6). Springer. https://doi.org/10.24451/arbor.20476
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