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  4. Numerical modeling using an elastoplastic-adhesive discrete element code for simulating hillslope debris flows and calibration against field experiments
 

Numerical modeling using an elastoplastic-adhesive discrete element code for simulating hillslope debris flows and calibration against field experiments

URI
https://arbor.bfh.ch/handle/arbor/40243
Version
Published
Date Issued
2019
Author(s)
Albaba, Adel  
Schwarz, Massimiliano  
Wendeler, Corinna
Loup, Bernard
Dorren, Luuk  
Type
Article
Language
English
Abstract
This paper presents a discrete-element-based elastoplastic-adhesive model which is adapted and tested for producing hillslope debris flows. The numerical model produces three phases of particle contacts: elastic, plastic and adhesive. A parametric study was conducted investigating the effect of model parameters and inclination angle on flow height, velocity and pressure, in order to define the most sensitive parameters to calibrate. The model capabilities of simulating different types of cohesive granular flows were tested with different ranges of flow velocities and heights. The basic model parameters, the microscopic basal friction (ϕb) and ratio between stiffness parameters √k1/k2, were calibrated using field experiments of hillslope debris flows impacting a pressure-measuring sensor. Simulations of 50 m3 of material were carried out on a channelized surface that is 41 m long and 8 m wide. The calibration process was based on measurements of flow height, flow velocity and the pressure applied to a sensor. Results of the numerical model matched those of the field data in terms of pressure and flow velocity well while less agreement was observed for flow height. Those discrepancies in results were due in part to the deposition of material in the field test, which is not reproducible in the model. Results of best-fit model parameters against selected experimental tests suggested that a link might exist between the model parameters and the initial conditions of the tested granular material (bulk density and water and fine contents). The good performance of the model against the full-scale field experiments encourages further investigation by conducting lab-scale experiments with detailed variation in water and fine content to better understand their link to the model's parameters.
Subjects
GE Environmental Sciences
DOI
10.24451/arbor.10132
https://doi.org/10.24451/arbor.10132
Publisher DOI
10.5194/nhess-19-2339-2019
Journal
Natural Hazards and Earth System Sciences
ISSN
1684-9981
Publisher URL
https://www.nat-hazards-earth-syst-sci.net/19/2339/2019/
Organization
Multifunktionale Waldwirtschaft  
Sponsors
Bundesamt für Umwelt
Volume
19
Issue
11
Project(s)
SlideForce
Publisher
Copernicus
Submitter
AlbabaA
Citation apa
Albaba, A., Schwarz, M., Wendeler, C., Loup, B., & Dorren, L. (2019). Numerical modeling using an elastoplastic-adhesive discrete element code for simulating hillslope debris flows and calibration against field experiments. In Natural Hazards and Earth System Sciences (Vol. 19, Issue 11). Copernicus. https://doi.org/10.24451/arbor.10132
Note
ISSN der Printausgabe: 1561-8633
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Version
published
Size

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