SlideShare une entreprise Scribd logo
1  sur  20
Télécharger pour lire hors ligne
Hydrological Modelling of Slope Stability

Grigorios Anagnostopoulos
Paolo Burlando
Institute of Environmental Engineering, ETH Zurich

European Geosciences Union, Vienna, April 7 2011
Background

Computational framework

Test Case

Summary

Shallow landslide hazard
Landslides triggered by rainfall occur in most mountainous
landscapes.
Most of them occur suddenly and travel long distances at high
speeds.
They can pose great threats to life and property.

Typical dimensions
Width ∼ tens of meters
Lenght ∼ hundreds of meters.
Depth ∼ 1-2 meters.
Landslides in Urseren Valey, Kanton Uri,
Switzerland
Hydrological Modelling of Slope Stability
2 / 17
Background

Computational framework

Test Case

Summary

Factors contributing to the phenomenon
Hydrological factors
Rainfall intensity and duration.
Antecedent soil moisture conditions.
Pore pressure change due to saturated and unsaturated flow of
water through soil pores.

Soil properties
Cohesion and friction angle (c,φ) of soil.
Root reinforcement provided by the vegetation.
Hydraulic conductivity and hysteretic behaviour of soil during
wetting and drying cycles.
Topography and macropores.
Hydrological Modelling of Slope Stability
3 / 17
Background

Computational framework

Test Case

Summary

State of the art of models
Deterministic models
Simplified low-dimensional models with various degrees of
simplification.
Numerical models solving the fully coupled three-dimensional
variably saturated flow and stress problem using conventional
numerical techniques (finite differences, finite elements).

Statistical models
Multivariate correlation between landslides and landscape attributes
and soil properties.
Analysis of duration and intensity of rainfalls triggering landslides.

Each one of them makes its own assumptions on various aspects
of the problem, thus limiting its range of applicability.
Hydrological Modelling of Slope Stability
4 / 17
Background

Computational framework

Test Case

Summary

Hydrological Component I
The Cellular Automata (CA) concept is used in order to model the
3D subsurface flow.
CA: General concepts
The domain is divided into discrete cells.
Each cell has its own state, which describes its physical condition.
The state of each cell evolves via simple rules based on neighbour
interactions.
These rules are implemented in the transition function which is
applied to all the cells of the domain.
Bottom-up approach in contrast with the discrete to continuum
to discrete paradox exhibited by the standard numerical methods.
CA concept is inherently parallel, as a collection of identical
transition functions simultaneously applied to all cells.
Hydrological Modelling of Slope Stability
5 / 17
Background

Computational framework

Test Case

Summary

Hydrological Component II
In the case of 3-D variably saturated flow
the mass balance equation plays the role of
the transition function:

(0,0,-1)

(-1,0,0)

Q5

Q1

(0,-1,0)

Q3

(0,1,0)

(0,0,0)

Q2

Q0

Q4

K αc
α∈I

hα − hc
lαc

Aαc +Sc = Vc σ(ψc )

∆h
∆t

(1,0,0)

(0,0,1)

σ(ψc ) =

Cc (ψc ), for ψc < 0
Ss ,
for ψc 0

Each cell of the lattice communicates with its neighbours only
through its faces.
Spatial heterogeneity is tackled because every cell has its own
constitutive hydraulic properties.
The boundary conditions can be of two types: constant head
(Diriclet) or constant flux (Neumann).
Hydrological Modelling of Slope Stability
6 / 17
Background

Computational framework

Test Case

Summary

Hydrological Component III
Soil Water Retention Curves
We used a modified Van Genuchten (VG) (Ippisch et al, 2006),
which corrects the unrealistic conductivity values predicted by the
classical VG model:
Se =

1
Sc [1

1

+ (α|h|)n ]−m , for h < he
, for h he

Hysteresis model
Different curves followed during the
drying and wetting processes.
It is crucial for the continuous
simulation of soil water content during
storm and inter-storm periods.
Hydrological Modelling of Slope Stability
7 / 17
Background

Computational framework

Test Case

Summary

Geotechnical Component
Despite their limitations, infinite slope analysis and the factor of
safety concept are used due to their simplicity.
Infinite Slope analysis limitations
Long, continuous slopes where the sliding surface is parallel to the
surface.
The thickness of the unstable material is small compared to the
height of the slope.
The end effects on the sliding block are neglected.

A factor of safety equation for both unsaturated and saturated
conditions is used, which uses the concept of effective stress (Lu
Ning and Godt Jonathan, WRR, 2010).
FOS =

tanφ
2c
uα − uw
+
+ Se
(tanβ + cotβ)tanφ
tanβ γz sin2β
γz
Hydrological Modelling of Slope Stability
8 / 17
Background

Computational framework

Test Case

Summary

Napf catchment: Overview

Location: Kanton Bern, Switzerland.
Area: 2, 5 km2 (48 % forested).
Altitude: 900 m − 1360 m.
Triggering event: A 3-hour precipitation event at 15-16 July 2002
caused many soil slips.
Hydrological Modelling of Slope Stability
9 / 17
Background

Computational framework

Test Case

Summary

Input data
Surface topography: A 3x3 m Digital Elevation Model is used.
Slope: It is calculated from the DEM using the ArcGIS routine.
Soil Depth: An exponential model, which relates the soil depth to
1
the slope is used: d = 3.0 · e (− 40 ·slope) .
Soil Parameters:
The soil map of switzerland (Bodeneignungskarte) was used for the
identification of the soil classes.
Representative values from the literature are used for the soil
properties of each soil class.

Land use: The land use map of Switzerland was used, which has a
100x100 m resolution.
Precipitation: We used the historical record of the Napf station,
which is located 5 km at the north of the catchment.
Initial conditions: We ran the model for a 6-month period prior to
the event in order to create more realistic soil moisture conditions.
Hydrological Modelling of Slope Stability
10 / 17
Background

Computational framework

Test Case

Summary

Model Validation
The performance of the model tested against:
The inventory of occurred landslides during the rainfall event of
15-16 July 2002.
The results of a frequently used model (TRIGRS ver 2.0).

TRIGRS
The catchment is modelled as a two dimensional array of non
interacting columns.
The water flow is considered vertical in each soil column.
Each column consists of two zones: an unsaturated zone which is in
top of the saturated zone. The two zones interact with each other
through the rise of the water table.
Infinite slope analysis is used for the computation of slope stability.
Hydrological Modelling of Slope Stability
12 / 17
Background

Computational framework

Test Case

Summary

Results I: Temporal evolution
Evolution of factor of safety during the 3-hour triggering event.
1.05

1

0.95

0.9

0.85

0.8

Hydrological Modelling of Slope Stability
13 / 17
Background

Computational framework

Test Case

Summary

Results I: Temporal evolution
Evolution of factor of safety during the 3-hour triggering event.
1.05

1

0.95

0.9

0.85

0.8

Hydrological Modelling of Slope Stability
13 / 17
Background

Computational framework

Test Case

Summary

Results I: Temporal evolution
Evolution of factor of safety during the 3-hour triggering event.
1.05

1

0.95

0.9

0.85

0.8

Hydrological Modelling of Slope Stability
13 / 17
Background

Computational framework

Test Case

Summary

Results I: Temporal evolution
Evolution of factor of safety during the 3-hour triggering event.
1.05

1

0.95

0.9

0.85

0.8

Hydrological Modelling of Slope Stability
13 / 17
Background

Computational framework

Test Case

Summary

Results II: Destabilised areas

Hydrological Modelling of Slope Stability
14 / 17
Background

Computational framework

Test Case

Summary

Results III: Quantitative data
True Positive Rate (%)
False Positive Rate (%)
Accuracy (%)
Precision (%)
Sliding Area (%)

Cell3D FOS
40.2
6.3
92.4
14.7
6.5

TRIGRS
23.5
11.2
82.5
4.5
13

Hydrological Modelling of Slope Stability
15 / 17
Background

Computational framework

Test Case

Summary

Summary, conclusions and future work
1

A reduced complexity model based on Cellular Automata is used for
the simulation of rainfall-induced landslides.

2

Emphasis is given on the detailed simulation of the water flow and
the resulting pore water pressures.

3

A simple model for slope stability based on infinite slope analysis is
coupled to the hydrological component.

4

The proposed model had a relatively good performance despite the
lack of detailed hydrological and soil data.

5

An elasto-plastic model will be incorporated in order to describe
better the soil behaviour due to stress and suction changes.

6

A parallel version in OpenMP and CUDA will be implemented in
order to simulate bigger catchments.

Hydrological Modelling of Slope Stability
16 / 17
Thanks for your attention!

Contenu connexe

Tendances

Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 1: g...
Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 1: g...Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 1: g...
Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 1: g...Alireza Babaee
 
Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 2: h...
Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 2: h...Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 2: h...
Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 2: h...Alireza Babaee
 
Taurus Libra North Idku - slope channel 3D seismic modelling, Egypt
Taurus Libra North Idku - slope channel 3D seismic modelling, EgyptTaurus Libra North Idku - slope channel 3D seismic modelling, Egypt
Taurus Libra North Idku - slope channel 3D seismic modelling, EgyptRichard Vaughan
 
Improving Distributed Hydrologocal Model Simulation Accuracy Using Polynomial...
Improving Distributed Hydrologocal Model Simulation Accuracy Using Polynomial...Improving Distributed Hydrologocal Model Simulation Accuracy Using Polynomial...
Improving Distributed Hydrologocal Model Simulation Accuracy Using Polynomial...Putika Ashfar Khoiri
 
A1 Renewability Assessment of the Reykjanes Geothermal System Gudni Axelsson
A1 Renewability Assessment of the Reykjanes Geothermal System Gudni AxelssonA1 Renewability Assessment of the Reykjanes Geothermal System Gudni Axelsson
A1 Renewability Assessment of the Reykjanes Geothermal System Gudni AxelssonGEORG Geothermal Workshop 2016
 
TU1.L10.2 - ESTIMATION OF ICE THICKNESS OF TUNDRA LAKES USING ERS–ENVISAT CR...
TU1.L10.2	 - ESTIMATION OF ICE THICKNESS OF TUNDRA LAKES USING ERS–ENVISAT CR...TU1.L10.2	 - ESTIMATION OF ICE THICKNESS OF TUNDRA LAKES USING ERS–ENVISAT CR...
TU1.L10.2 - ESTIMATION OF ICE THICKNESS OF TUNDRA LAKES USING ERS–ENVISAT CR...grssieee
 
A2 Vincent Drouin Deformation at Krafla and Bjarnarflag geothermal areas, Nor...
A2 Vincent Drouin Deformation at Krafla and Bjarnarflag geothermal areas, Nor...A2 Vincent Drouin Deformation at Krafla and Bjarnarflag geothermal areas, Nor...
A2 Vincent Drouin Deformation at Krafla and Bjarnarflag geothermal areas, Nor...GEORG Geothermal Workshop 2016
 
UECT_2014_Poster_Leverett
UECT_2014_Poster_LeverettUECT_2014_Poster_Leverett
UECT_2014_Poster_LeverettMehmet Ender
 

Tendances (20)

Advances in Rock Physics Modelling and Improved Estimation of CO2 Saturation,...
Advances in Rock Physics Modelling and Improved Estimation of CO2 Saturation,...Advances in Rock Physics Modelling and Improved Estimation of CO2 Saturation,...
Advances in Rock Physics Modelling and Improved Estimation of CO2 Saturation,...
 
20 Years and 20Mt, Statoil Storage Experience, Andrew Cavanagh - Geophysical ...
20 Years and 20Mt, Statoil Storage Experience, Andrew Cavanagh - Geophysical ...20 Years and 20Mt, Statoil Storage Experience, Andrew Cavanagh - Geophysical ...
20 Years and 20Mt, Statoil Storage Experience, Andrew Cavanagh - Geophysical ...
 
Gabriele Baroni
Gabriele BaroniGabriele Baroni
Gabriele Baroni
 
Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 1: g...
Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 1: g...Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 1: g...
Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 1: g...
 
Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 2: h...
Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 2: h...Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 2: h...
Integrated hydro-geological risk for Mallero basin (Alpine Italy) – part 2: h...
 
PERMAFROST RUNOFF
PERMAFROST RUNOFFPERMAFROST RUNOFF
PERMAFROST RUNOFF
 
Gianluca Botter
Gianluca BotterGianluca Botter
Gianluca Botter
 
Giacomo bertoldi seminar_30_padova_08
Giacomo bertoldi seminar_30_padova_08Giacomo bertoldi seminar_30_padova_08
Giacomo bertoldi seminar_30_padova_08
 
Soil and Water Engineering 04
Soil and Water Engineering 04Soil and Water Engineering 04
Soil and Water Engineering 04
 
Aldo Fiori
Aldo FioriAldo Fiori
Aldo Fiori
 
Sylvain Weill
Sylvain WeillSylvain Weill
Sylvain Weill
 
Taurus Libra North Idku - slope channel 3D seismic modelling, Egypt
Taurus Libra North Idku - slope channel 3D seismic modelling, EgyptTaurus Libra North Idku - slope channel 3D seismic modelling, Egypt
Taurus Libra North Idku - slope channel 3D seismic modelling, Egypt
 
Improving Distributed Hydrologocal Model Simulation Accuracy Using Polynomial...
Improving Distributed Hydrologocal Model Simulation Accuracy Using Polynomial...Improving Distributed Hydrologocal Model Simulation Accuracy Using Polynomial...
Improving Distributed Hydrologocal Model Simulation Accuracy Using Polynomial...
 
A1 Renewability Assessment of the Reykjanes Geothermal System Gudni Axelsson
A1 Renewability Assessment of the Reykjanes Geothermal System Gudni AxelssonA1 Renewability Assessment of the Reykjanes Geothermal System Gudni Axelsson
A1 Renewability Assessment of the Reykjanes Geothermal System Gudni Axelsson
 
Presentation aboout flood routing
Presentation aboout flood routingPresentation aboout flood routing
Presentation aboout flood routing
 
Runoff & Flood Frequency Analysis
Runoff & Flood Frequency AnalysisRunoff & Flood Frequency Analysis
Runoff & Flood Frequency Analysis
 
TU1.L10.2 - ESTIMATION OF ICE THICKNESS OF TUNDRA LAKES USING ERS–ENVISAT CR...
TU1.L10.2	 - ESTIMATION OF ICE THICKNESS OF TUNDRA LAKES USING ERS–ENVISAT CR...TU1.L10.2	 - ESTIMATION OF ICE THICKNESS OF TUNDRA LAKES USING ERS–ENVISAT CR...
TU1.L10.2 - ESTIMATION OF ICE THICKNESS OF TUNDRA LAKES USING ERS–ENVISAT CR...
 
A2 Vincent Drouin Deformation at Krafla and Bjarnarflag geothermal areas, Nor...
A2 Vincent Drouin Deformation at Krafla and Bjarnarflag geothermal areas, Nor...A2 Vincent Drouin Deformation at Krafla and Bjarnarflag geothermal areas, Nor...
A2 Vincent Drouin Deformation at Krafla and Bjarnarflag geothermal areas, Nor...
 
UECT_2014_Poster_Leverett
UECT_2014_Poster_LeverettUECT_2014_Poster_Leverett
UECT_2014_Poster_Leverett
 
Carlotta Scudeler
Carlotta ScudelerCarlotta Scudeler
Carlotta Scudeler
 

En vedette

Numerical problem on bearing capacity is code terzaghi water table (usefulsea...
Numerical problem on bearing capacity is code terzaghi water table (usefulsea...Numerical problem on bearing capacity is code terzaghi water table (usefulsea...
Numerical problem on bearing capacity is code terzaghi water table (usefulsea...Make Mannan
 
Question and Answers on Terzaghi’s Bearing Capacity Theory (usefulsearch.org)...
Question and Answers on Terzaghi’s Bearing Capacity Theory (usefulsearch.org)...Question and Answers on Terzaghi’s Bearing Capacity Theory (usefulsearch.org)...
Question and Answers on Terzaghi’s Bearing Capacity Theory (usefulsearch.org)...Make Mannan
 
GEOTECHNICAL SLOPE STABILITY
GEOTECHNICAL SLOPE STABILITYGEOTECHNICAL SLOPE STABILITY
GEOTECHNICAL SLOPE STABILITYNgo Hung Long
 
Numerical Problem and solution on Bearing Capacity ( Terzaghi and Meyerhof T...
Numerical Problem and solution on Bearing Capacity  ( Terzaghi and Meyerhof T...Numerical Problem and solution on Bearing Capacity  ( Terzaghi and Meyerhof T...
Numerical Problem and solution on Bearing Capacity ( Terzaghi and Meyerhof T...Make Mannan
 
3.bearing capacity of soil
3.bearing capacity of soil3.bearing capacity of soil
3.bearing capacity of soilAmynaah Amye
 
Numerical Question on Terzaghi Bearing Capacity Theory, Meyerhof Bearing Capa...
Numerical Question on Terzaghi Bearing Capacity Theory, Meyerhof Bearing Capa...Numerical Question on Terzaghi Bearing Capacity Theory, Meyerhof Bearing Capa...
Numerical Question on Terzaghi Bearing Capacity Theory, Meyerhof Bearing Capa...Make Mannan
 
Geotech. Engg. Ch#04 lateral earth pressure
Geotech. Engg. Ch#04 lateral earth pressureGeotech. Engg. Ch#04 lateral earth pressure
Geotech. Engg. Ch#04 lateral earth pressureIrfan Malik
 
Geotech Engg. Ch#05 bearing capacity
Geotech Engg. Ch#05 bearing capacityGeotech Engg. Ch#05 bearing capacity
Geotech Engg. Ch#05 bearing capacityIrfan Malik
 
Bearing capacity of Soil
Bearing capacity of SoilBearing capacity of Soil
Bearing capacity of SoilPirpasha Ujede
 
Data Requirements for Groundwater Modelling
Data Requirements for Groundwater ModellingData Requirements for Groundwater Modelling
Data Requirements for Groundwater ModellingC. P. Kumar
 

En vedette (12)

Numerical problem on bearing capacity is code terzaghi water table (usefulsea...
Numerical problem on bearing capacity is code terzaghi water table (usefulsea...Numerical problem on bearing capacity is code terzaghi water table (usefulsea...
Numerical problem on bearing capacity is code terzaghi water table (usefulsea...
 
Question and Answers on Terzaghi’s Bearing Capacity Theory (usefulsearch.org)...
Question and Answers on Terzaghi’s Bearing Capacity Theory (usefulsearch.org)...Question and Answers on Terzaghi’s Bearing Capacity Theory (usefulsearch.org)...
Question and Answers on Terzaghi’s Bearing Capacity Theory (usefulsearch.org)...
 
GEOTECHNICAL SLOPE STABILITY
GEOTECHNICAL SLOPE STABILITYGEOTECHNICAL SLOPE STABILITY
GEOTECHNICAL SLOPE STABILITY
 
Numerical Problem and solution on Bearing Capacity ( Terzaghi and Meyerhof T...
Numerical Problem and solution on Bearing Capacity  ( Terzaghi and Meyerhof T...Numerical Problem and solution on Bearing Capacity  ( Terzaghi and Meyerhof T...
Numerical Problem and solution on Bearing Capacity ( Terzaghi and Meyerhof T...
 
3.bearing capacity of soil
3.bearing capacity of soil3.bearing capacity of soil
3.bearing capacity of soil
 
Numerical Question on Terzaghi Bearing Capacity Theory, Meyerhof Bearing Capa...
Numerical Question on Terzaghi Bearing Capacity Theory, Meyerhof Bearing Capa...Numerical Question on Terzaghi Bearing Capacity Theory, Meyerhof Bearing Capa...
Numerical Question on Terzaghi Bearing Capacity Theory, Meyerhof Bearing Capa...
 
Geotech. Engg. Ch#04 lateral earth pressure
Geotech. Engg. Ch#04 lateral earth pressureGeotech. Engg. Ch#04 lateral earth pressure
Geotech. Engg. Ch#04 lateral earth pressure
 
Soil slope stability
Soil slope stabilitySoil slope stability
Soil slope stability
 
Geotech Engg. Ch#05 bearing capacity
Geotech Engg. Ch#05 bearing capacityGeotech Engg. Ch#05 bearing capacity
Geotech Engg. Ch#05 bearing capacity
 
Bearing capacity
Bearing capacityBearing capacity
Bearing capacity
 
Bearing capacity of Soil
Bearing capacity of SoilBearing capacity of Soil
Bearing capacity of Soil
 
Data Requirements for Groundwater Modelling
Data Requirements for Groundwater ModellingData Requirements for Groundwater Modelling
Data Requirements for Groundwater Modelling
 

Similaire à Hydrological Modelling of Slope Stability

Hydrological Modelling of Shallow Landslides
Hydrological Modelling of Shallow LandslidesHydrological Modelling of Shallow Landslides
Hydrological Modelling of Shallow LandslidesGrigoris Anagnostopoulos
 
A distributed physically based model to predict timing and spatial distributi...
A distributed physically based model to predict timing and spatial distributi...A distributed physically based model to predict timing and spatial distributi...
A distributed physically based model to predict timing and spatial distributi...Grigoris Anagnostopoulos
 
Numerical study on free-surface flow
Numerical study on free-surface flowNumerical study on free-surface flow
Numerical study on free-surface flowmiguelpgomes07
 
ODDLS: Overlapping domain decomposition Level Set Method
ODDLS: Overlapping domain decomposition Level Set MethodODDLS: Overlapping domain decomposition Level Set Method
ODDLS: Overlapping domain decomposition Level Set MethodAleix Valls
 
The Illustration of Mechanism and development of Atmospheric dynamic peripher...
The Illustration of Mechanism and development of Atmospheric dynamic peripher...The Illustration of Mechanism and development of Atmospheric dynamic peripher...
The Illustration of Mechanism and development of Atmospheric dynamic peripher...iosrjce
 
DSD-INT 2016 Integrating information sources for inland waters modelling - Ba...
DSD-INT 2016 Integrating information sources for inland waters modelling - Ba...DSD-INT 2016 Integrating information sources for inland waters modelling - Ba...
DSD-INT 2016 Integrating information sources for inland waters modelling - Ba...Deltares
 
Modelling variably saturated flow using cellular automata
Modelling variably saturated flow using cellular automataModelling variably saturated flow using cellular automata
Modelling variably saturated flow using cellular automataGrigoris Anagnostopoulos
 
Vol. 1 (1), 2014, 7–11
Vol. 1 (1), 2014, 7–11Vol. 1 (1), 2014, 7–11
Vol. 1 (1), 2014, 7–11Said Benramache
 
Modeling of soil erosion by water
Modeling of soil erosion by waterModeling of soil erosion by water
Modeling of soil erosion by waterIAEME Publication
 
CDAC 2018 Dubini microfluidic technologies for single cell manipulation
CDAC 2018 Dubini microfluidic technologies for single cell manipulationCDAC 2018 Dubini microfluidic technologies for single cell manipulation
CDAC 2018 Dubini microfluidic technologies for single cell manipulationMarco Antoniotti
 
Aerodynamic and Acoustic Parameters of a Coandã Flow – a Numerical Investigation
Aerodynamic and Acoustic Parameters of a Coandã Flow – a Numerical InvestigationAerodynamic and Acoustic Parameters of a Coandã Flow – a Numerical Investigation
Aerodynamic and Acoustic Parameters of a Coandã Flow – a Numerical Investigationdrboon
 
dahlstrom_doherty_MODFLOW98
dahlstrom_doherty_MODFLOW98dahlstrom_doherty_MODFLOW98
dahlstrom_doherty_MODFLOW98Dave Dahlstrom
 
Lecture 1 Stochastic Hydrology.pdf
Lecture 1 Stochastic Hydrology.pdfLecture 1 Stochastic Hydrology.pdf
Lecture 1 Stochastic Hydrology.pdfssuser92f0f0
 
Atmospheric Chemistry Models
Atmospheric Chemistry ModelsAtmospheric Chemistry Models
Atmospheric Chemistry Modelsahmad bassiouny
 
Multi-Fidelity Optimization of a High Speed, Foil-Assisted Catamaran for Low ...
Multi-Fidelity Optimization of a High Speed, Foil-Assisted Catamaran for Low ...Multi-Fidelity Optimization of a High Speed, Foil-Assisted Catamaran for Low ...
Multi-Fidelity Optimization of a High Speed, Foil-Assisted Catamaran for Low ...Kellen Betts
 

Similaire à Hydrological Modelling of Slope Stability (20)

Hydrological Modelling of Shallow Landslides
Hydrological Modelling of Shallow LandslidesHydrological Modelling of Shallow Landslides
Hydrological Modelling of Shallow Landslides
 
A distributed physically based model to predict timing and spatial distributi...
A distributed physically based model to predict timing and spatial distributi...A distributed physically based model to predict timing and spatial distributi...
A distributed physically based model to predict timing and spatial distributi...
 
Numerical study on free-surface flow
Numerical study on free-surface flowNumerical study on free-surface flow
Numerical study on free-surface flow
 
ODDLS: Overlapping domain decomposition Level Set Method
ODDLS: Overlapping domain decomposition Level Set MethodODDLS: Overlapping domain decomposition Level Set Method
ODDLS: Overlapping domain decomposition Level Set Method
 
The Illustration of Mechanism and development of Atmospheric dynamic peripher...
The Illustration of Mechanism and development of Atmospheric dynamic peripher...The Illustration of Mechanism and development of Atmospheric dynamic peripher...
The Illustration of Mechanism and development of Atmospheric dynamic peripher...
 
F03313338
F03313338F03313338
F03313338
 
Final-Thesis-present.pptx
Final-Thesis-present.pptxFinal-Thesis-present.pptx
Final-Thesis-present.pptx
 
Briaud2001
Briaud2001Briaud2001
Briaud2001
 
DSD-INT 2016 Integrating information sources for inland waters modelling - Ba...
DSD-INT 2016 Integrating information sources for inland waters modelling - Ba...DSD-INT 2016 Integrating information sources for inland waters modelling - Ba...
DSD-INT 2016 Integrating information sources for inland waters modelling - Ba...
 
Modelling variably saturated flow using cellular automata
Modelling variably saturated flow using cellular automataModelling variably saturated flow using cellular automata
Modelling variably saturated flow using cellular automata
 
Vol. 1 (1), 2014, 7–11
Vol. 1 (1), 2014, 7–11Vol. 1 (1), 2014, 7–11
Vol. 1 (1), 2014, 7–11
 
Modeling of soil erosion by water
Modeling of soil erosion by waterModeling of soil erosion by water
Modeling of soil erosion by water
 
CDAC 2018 Dubini microfluidic technologies for single cell manipulation
CDAC 2018 Dubini microfluidic technologies for single cell manipulationCDAC 2018 Dubini microfluidic technologies for single cell manipulation
CDAC 2018 Dubini microfluidic technologies for single cell manipulation
 
9979190.pdf
9979190.pdf9979190.pdf
9979190.pdf
 
Lecture22012.pptx
Lecture22012.pptxLecture22012.pptx
Lecture22012.pptx
 
Aerodynamic and Acoustic Parameters of a Coandã Flow – a Numerical Investigation
Aerodynamic and Acoustic Parameters of a Coandã Flow – a Numerical InvestigationAerodynamic and Acoustic Parameters of a Coandã Flow – a Numerical Investigation
Aerodynamic and Acoustic Parameters of a Coandã Flow – a Numerical Investigation
 
dahlstrom_doherty_MODFLOW98
dahlstrom_doherty_MODFLOW98dahlstrom_doherty_MODFLOW98
dahlstrom_doherty_MODFLOW98
 
Lecture 1 Stochastic Hydrology.pdf
Lecture 1 Stochastic Hydrology.pdfLecture 1 Stochastic Hydrology.pdf
Lecture 1 Stochastic Hydrology.pdf
 
Atmospheric Chemistry Models
Atmospheric Chemistry ModelsAtmospheric Chemistry Models
Atmospheric Chemistry Models
 
Multi-Fidelity Optimization of a High Speed, Foil-Assisted Catamaran for Low ...
Multi-Fidelity Optimization of a High Speed, Foil-Assisted Catamaran for Low ...Multi-Fidelity Optimization of a High Speed, Foil-Assisted Catamaran for Low ...
Multi-Fidelity Optimization of a High Speed, Foil-Assisted Catamaran for Low ...
 

Dernier

4.16.24 21st Century Movements for Black Lives.pptx
4.16.24 21st Century Movements for Black Lives.pptx4.16.24 21st Century Movements for Black Lives.pptx
4.16.24 21st Century Movements for Black Lives.pptxmary850239
 
Proudly South Africa powerpoint Thorisha.pptx
Proudly South Africa powerpoint Thorisha.pptxProudly South Africa powerpoint Thorisha.pptx
Proudly South Africa powerpoint Thorisha.pptxthorishapillay1
 
Earth Day Presentation wow hello nice great
Earth Day Presentation wow hello nice greatEarth Day Presentation wow hello nice great
Earth Day Presentation wow hello nice greatYousafMalik24
 
Field Attribute Index Feature in Odoo 17
Field Attribute Index Feature in Odoo 17Field Attribute Index Feature in Odoo 17
Field Attribute Index Feature in Odoo 17Celine George
 
Karra SKD Conference Presentation Revised.pptx
Karra SKD Conference Presentation Revised.pptxKarra SKD Conference Presentation Revised.pptx
Karra SKD Conference Presentation Revised.pptxAshokKarra1
 
Difference Between Search & Browse Methods in Odoo 17
Difference Between Search & Browse Methods in Odoo 17Difference Between Search & Browse Methods in Odoo 17
Difference Between Search & Browse Methods in Odoo 17Celine George
 
Keynote by Prof. Wurzer at Nordex about IP-design
Keynote by Prof. Wurzer at Nordex about IP-designKeynote by Prof. Wurzer at Nordex about IP-design
Keynote by Prof. Wurzer at Nordex about IP-designMIPLM
 
Procuring digital preservation CAN be quick and painless with our new dynamic...
Procuring digital preservation CAN be quick and painless with our new dynamic...Procuring digital preservation CAN be quick and painless with our new dynamic...
Procuring digital preservation CAN be quick and painless with our new dynamic...Jisc
 
Visit to a blind student's school🧑‍🦯🧑‍🦯(community medicine)
Visit to a blind student's school🧑‍🦯🧑‍🦯(community medicine)Visit to a blind student's school🧑‍🦯🧑‍🦯(community medicine)
Visit to a blind student's school🧑‍🦯🧑‍🦯(community medicine)lakshayb543
 
USPS® Forced Meter Migration - How to Know if Your Postage Meter Will Soon be...
USPS® Forced Meter Migration - How to Know if Your Postage Meter Will Soon be...USPS® Forced Meter Migration - How to Know if Your Postage Meter Will Soon be...
USPS® Forced Meter Migration - How to Know if Your Postage Meter Will Soon be...Postal Advocate Inc.
 
Barangay Council for the Protection of Children (BCPC) Orientation.pptx
Barangay Council for the Protection of Children (BCPC) Orientation.pptxBarangay Council for the Protection of Children (BCPC) Orientation.pptx
Barangay Council for the Protection of Children (BCPC) Orientation.pptxCarlos105
 
AMERICAN LANGUAGE HUB_Level2_Student'sBook_Answerkey.pdf
AMERICAN LANGUAGE HUB_Level2_Student'sBook_Answerkey.pdfAMERICAN LANGUAGE HUB_Level2_Student'sBook_Answerkey.pdf
AMERICAN LANGUAGE HUB_Level2_Student'sBook_Answerkey.pdfphamnguyenenglishnb
 
THEORIES OF ORGANIZATION-PUBLIC ADMINISTRATION
THEORIES OF ORGANIZATION-PUBLIC ADMINISTRATIONTHEORIES OF ORGANIZATION-PUBLIC ADMINISTRATION
THEORIES OF ORGANIZATION-PUBLIC ADMINISTRATIONHumphrey A Beña
 
ANG SEKTOR NG agrikultura.pptx QUARTER 4
ANG SEKTOR NG agrikultura.pptx QUARTER 4ANG SEKTOR NG agrikultura.pptx QUARTER 4
ANG SEKTOR NG agrikultura.pptx QUARTER 4MiaBumagat1
 
Grade 9 Quarter 4 Dll Grade 9 Quarter 4 DLL.pdf
Grade 9 Quarter 4 Dll Grade 9 Quarter 4 DLL.pdfGrade 9 Quarter 4 Dll Grade 9 Quarter 4 DLL.pdf
Grade 9 Quarter 4 Dll Grade 9 Quarter 4 DLL.pdfJemuel Francisco
 
AUDIENCE THEORY -CULTIVATION THEORY - GERBNER.pptx
AUDIENCE THEORY -CULTIVATION THEORY -  GERBNER.pptxAUDIENCE THEORY -CULTIVATION THEORY -  GERBNER.pptx
AUDIENCE THEORY -CULTIVATION THEORY - GERBNER.pptxiammrhaywood
 
How to Add Barcode on PDF Report in Odoo 17
How to Add Barcode on PDF Report in Odoo 17How to Add Barcode on PDF Report in Odoo 17
How to Add Barcode on PDF Report in Odoo 17Celine George
 

Dernier (20)

4.16.24 21st Century Movements for Black Lives.pptx
4.16.24 21st Century Movements for Black Lives.pptx4.16.24 21st Century Movements for Black Lives.pptx
4.16.24 21st Century Movements for Black Lives.pptx
 
Model Call Girl in Tilak Nagar Delhi reach out to us at 🔝9953056974🔝
Model Call Girl in Tilak Nagar Delhi reach out to us at 🔝9953056974🔝Model Call Girl in Tilak Nagar Delhi reach out to us at 🔝9953056974🔝
Model Call Girl in Tilak Nagar Delhi reach out to us at 🔝9953056974🔝
 
Proudly South Africa powerpoint Thorisha.pptx
Proudly South Africa powerpoint Thorisha.pptxProudly South Africa powerpoint Thorisha.pptx
Proudly South Africa powerpoint Thorisha.pptx
 
Earth Day Presentation wow hello nice great
Earth Day Presentation wow hello nice greatEarth Day Presentation wow hello nice great
Earth Day Presentation wow hello nice great
 
Field Attribute Index Feature in Odoo 17
Field Attribute Index Feature in Odoo 17Field Attribute Index Feature in Odoo 17
Field Attribute Index Feature in Odoo 17
 
Karra SKD Conference Presentation Revised.pptx
Karra SKD Conference Presentation Revised.pptxKarra SKD Conference Presentation Revised.pptx
Karra SKD Conference Presentation Revised.pptx
 
Difference Between Search & Browse Methods in Odoo 17
Difference Between Search & Browse Methods in Odoo 17Difference Between Search & Browse Methods in Odoo 17
Difference Between Search & Browse Methods in Odoo 17
 
Keynote by Prof. Wurzer at Nordex about IP-design
Keynote by Prof. Wurzer at Nordex about IP-designKeynote by Prof. Wurzer at Nordex about IP-design
Keynote by Prof. Wurzer at Nordex about IP-design
 
Procuring digital preservation CAN be quick and painless with our new dynamic...
Procuring digital preservation CAN be quick and painless with our new dynamic...Procuring digital preservation CAN be quick and painless with our new dynamic...
Procuring digital preservation CAN be quick and painless with our new dynamic...
 
Raw materials used in Herbal Cosmetics.pptx
Raw materials used in Herbal Cosmetics.pptxRaw materials used in Herbal Cosmetics.pptx
Raw materials used in Herbal Cosmetics.pptx
 
Visit to a blind student's school🧑‍🦯🧑‍🦯(community medicine)
Visit to a blind student's school🧑‍🦯🧑‍🦯(community medicine)Visit to a blind student's school🧑‍🦯🧑‍🦯(community medicine)
Visit to a blind student's school🧑‍🦯🧑‍🦯(community medicine)
 
USPS® Forced Meter Migration - How to Know if Your Postage Meter Will Soon be...
USPS® Forced Meter Migration - How to Know if Your Postage Meter Will Soon be...USPS® Forced Meter Migration - How to Know if Your Postage Meter Will Soon be...
USPS® Forced Meter Migration - How to Know if Your Postage Meter Will Soon be...
 
Barangay Council for the Protection of Children (BCPC) Orientation.pptx
Barangay Council for the Protection of Children (BCPC) Orientation.pptxBarangay Council for the Protection of Children (BCPC) Orientation.pptx
Barangay Council for the Protection of Children (BCPC) Orientation.pptx
 
AMERICAN LANGUAGE HUB_Level2_Student'sBook_Answerkey.pdf
AMERICAN LANGUAGE HUB_Level2_Student'sBook_Answerkey.pdfAMERICAN LANGUAGE HUB_Level2_Student'sBook_Answerkey.pdf
AMERICAN LANGUAGE HUB_Level2_Student'sBook_Answerkey.pdf
 
THEORIES OF ORGANIZATION-PUBLIC ADMINISTRATION
THEORIES OF ORGANIZATION-PUBLIC ADMINISTRATIONTHEORIES OF ORGANIZATION-PUBLIC ADMINISTRATION
THEORIES OF ORGANIZATION-PUBLIC ADMINISTRATION
 
ANG SEKTOR NG agrikultura.pptx QUARTER 4
ANG SEKTOR NG agrikultura.pptx QUARTER 4ANG SEKTOR NG agrikultura.pptx QUARTER 4
ANG SEKTOR NG agrikultura.pptx QUARTER 4
 
Grade 9 Quarter 4 Dll Grade 9 Quarter 4 DLL.pdf
Grade 9 Quarter 4 Dll Grade 9 Quarter 4 DLL.pdfGrade 9 Quarter 4 Dll Grade 9 Quarter 4 DLL.pdf
Grade 9 Quarter 4 Dll Grade 9 Quarter 4 DLL.pdf
 
AUDIENCE THEORY -CULTIVATION THEORY - GERBNER.pptx
AUDIENCE THEORY -CULTIVATION THEORY -  GERBNER.pptxAUDIENCE THEORY -CULTIVATION THEORY -  GERBNER.pptx
AUDIENCE THEORY -CULTIVATION THEORY - GERBNER.pptx
 
YOUVE GOT EMAIL_FINALS_EL_DORADO_2024.pptx
YOUVE GOT EMAIL_FINALS_EL_DORADO_2024.pptxYOUVE GOT EMAIL_FINALS_EL_DORADO_2024.pptx
YOUVE GOT EMAIL_FINALS_EL_DORADO_2024.pptx
 
How to Add Barcode on PDF Report in Odoo 17
How to Add Barcode on PDF Report in Odoo 17How to Add Barcode on PDF Report in Odoo 17
How to Add Barcode on PDF Report in Odoo 17
 

Hydrological Modelling of Slope Stability

  • 1. Hydrological Modelling of Slope Stability Grigorios Anagnostopoulos Paolo Burlando Institute of Environmental Engineering, ETH Zurich European Geosciences Union, Vienna, April 7 2011
  • 2. Background Computational framework Test Case Summary Shallow landslide hazard Landslides triggered by rainfall occur in most mountainous landscapes. Most of them occur suddenly and travel long distances at high speeds. They can pose great threats to life and property. Typical dimensions Width ∼ tens of meters Lenght ∼ hundreds of meters. Depth ∼ 1-2 meters. Landslides in Urseren Valey, Kanton Uri, Switzerland Hydrological Modelling of Slope Stability 2 / 17
  • 3. Background Computational framework Test Case Summary Factors contributing to the phenomenon Hydrological factors Rainfall intensity and duration. Antecedent soil moisture conditions. Pore pressure change due to saturated and unsaturated flow of water through soil pores. Soil properties Cohesion and friction angle (c,φ) of soil. Root reinforcement provided by the vegetation. Hydraulic conductivity and hysteretic behaviour of soil during wetting and drying cycles. Topography and macropores. Hydrological Modelling of Slope Stability 3 / 17
  • 4. Background Computational framework Test Case Summary State of the art of models Deterministic models Simplified low-dimensional models with various degrees of simplification. Numerical models solving the fully coupled three-dimensional variably saturated flow and stress problem using conventional numerical techniques (finite differences, finite elements). Statistical models Multivariate correlation between landslides and landscape attributes and soil properties. Analysis of duration and intensity of rainfalls triggering landslides. Each one of them makes its own assumptions on various aspects of the problem, thus limiting its range of applicability. Hydrological Modelling of Slope Stability 4 / 17
  • 5. Background Computational framework Test Case Summary Hydrological Component I The Cellular Automata (CA) concept is used in order to model the 3D subsurface flow. CA: General concepts The domain is divided into discrete cells. Each cell has its own state, which describes its physical condition. The state of each cell evolves via simple rules based on neighbour interactions. These rules are implemented in the transition function which is applied to all the cells of the domain. Bottom-up approach in contrast with the discrete to continuum to discrete paradox exhibited by the standard numerical methods. CA concept is inherently parallel, as a collection of identical transition functions simultaneously applied to all cells. Hydrological Modelling of Slope Stability 5 / 17
  • 6. Background Computational framework Test Case Summary Hydrological Component II In the case of 3-D variably saturated flow the mass balance equation plays the role of the transition function: (0,0,-1) (-1,0,0) Q5 Q1 (0,-1,0) Q3 (0,1,0) (0,0,0) Q2 Q0 Q4 K αc α∈I hα − hc lαc Aαc +Sc = Vc σ(ψc ) ∆h ∆t (1,0,0) (0,0,1) σ(ψc ) = Cc (ψc ), for ψc < 0 Ss , for ψc 0 Each cell of the lattice communicates with its neighbours only through its faces. Spatial heterogeneity is tackled because every cell has its own constitutive hydraulic properties. The boundary conditions can be of two types: constant head (Diriclet) or constant flux (Neumann). Hydrological Modelling of Slope Stability 6 / 17
  • 7. Background Computational framework Test Case Summary Hydrological Component III Soil Water Retention Curves We used a modified Van Genuchten (VG) (Ippisch et al, 2006), which corrects the unrealistic conductivity values predicted by the classical VG model: Se = 1 Sc [1 1 + (α|h|)n ]−m , for h < he , for h he Hysteresis model Different curves followed during the drying and wetting processes. It is crucial for the continuous simulation of soil water content during storm and inter-storm periods. Hydrological Modelling of Slope Stability 7 / 17
  • 8. Background Computational framework Test Case Summary Geotechnical Component Despite their limitations, infinite slope analysis and the factor of safety concept are used due to their simplicity. Infinite Slope analysis limitations Long, continuous slopes where the sliding surface is parallel to the surface. The thickness of the unstable material is small compared to the height of the slope. The end effects on the sliding block are neglected. A factor of safety equation for both unsaturated and saturated conditions is used, which uses the concept of effective stress (Lu Ning and Godt Jonathan, WRR, 2010). FOS = tanφ 2c uα − uw + + Se (tanβ + cotβ)tanφ tanβ γz sin2β γz Hydrological Modelling of Slope Stability 8 / 17
  • 9. Background Computational framework Test Case Summary Napf catchment: Overview Location: Kanton Bern, Switzerland. Area: 2, 5 km2 (48 % forested). Altitude: 900 m − 1360 m. Triggering event: A 3-hour precipitation event at 15-16 July 2002 caused many soil slips. Hydrological Modelling of Slope Stability 9 / 17
  • 10. Background Computational framework Test Case Summary Input data Surface topography: A 3x3 m Digital Elevation Model is used. Slope: It is calculated from the DEM using the ArcGIS routine. Soil Depth: An exponential model, which relates the soil depth to 1 the slope is used: d = 3.0 · e (− 40 ·slope) . Soil Parameters: The soil map of switzerland (Bodeneignungskarte) was used for the identification of the soil classes. Representative values from the literature are used for the soil properties of each soil class. Land use: The land use map of Switzerland was used, which has a 100x100 m resolution. Precipitation: We used the historical record of the Napf station, which is located 5 km at the north of the catchment. Initial conditions: We ran the model for a 6-month period prior to the event in order to create more realistic soil moisture conditions. Hydrological Modelling of Slope Stability 10 / 17
  • 11.
  • 12. Background Computational framework Test Case Summary Model Validation The performance of the model tested against: The inventory of occurred landslides during the rainfall event of 15-16 July 2002. The results of a frequently used model (TRIGRS ver 2.0). TRIGRS The catchment is modelled as a two dimensional array of non interacting columns. The water flow is considered vertical in each soil column. Each column consists of two zones: an unsaturated zone which is in top of the saturated zone. The two zones interact with each other through the rise of the water table. Infinite slope analysis is used for the computation of slope stability. Hydrological Modelling of Slope Stability 12 / 17
  • 13. Background Computational framework Test Case Summary Results I: Temporal evolution Evolution of factor of safety during the 3-hour triggering event. 1.05 1 0.95 0.9 0.85 0.8 Hydrological Modelling of Slope Stability 13 / 17
  • 14. Background Computational framework Test Case Summary Results I: Temporal evolution Evolution of factor of safety during the 3-hour triggering event. 1.05 1 0.95 0.9 0.85 0.8 Hydrological Modelling of Slope Stability 13 / 17
  • 15. Background Computational framework Test Case Summary Results I: Temporal evolution Evolution of factor of safety during the 3-hour triggering event. 1.05 1 0.95 0.9 0.85 0.8 Hydrological Modelling of Slope Stability 13 / 17
  • 16. Background Computational framework Test Case Summary Results I: Temporal evolution Evolution of factor of safety during the 3-hour triggering event. 1.05 1 0.95 0.9 0.85 0.8 Hydrological Modelling of Slope Stability 13 / 17
  • 17. Background Computational framework Test Case Summary Results II: Destabilised areas Hydrological Modelling of Slope Stability 14 / 17
  • 18. Background Computational framework Test Case Summary Results III: Quantitative data True Positive Rate (%) False Positive Rate (%) Accuracy (%) Precision (%) Sliding Area (%) Cell3D FOS 40.2 6.3 92.4 14.7 6.5 TRIGRS 23.5 11.2 82.5 4.5 13 Hydrological Modelling of Slope Stability 15 / 17
  • 19. Background Computational framework Test Case Summary Summary, conclusions and future work 1 A reduced complexity model based on Cellular Automata is used for the simulation of rainfall-induced landslides. 2 Emphasis is given on the detailed simulation of the water flow and the resulting pore water pressures. 3 A simple model for slope stability based on infinite slope analysis is coupled to the hydrological component. 4 The proposed model had a relatively good performance despite the lack of detailed hydrological and soil data. 5 An elasto-plastic model will be incorporated in order to describe better the soil behaviour due to stress and suction changes. 6 A parallel version in OpenMP and CUDA will be implemented in order to simulate bigger catchments. Hydrological Modelling of Slope Stability 16 / 17
  • 20. Thanks for your attention!