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DIGITAL SOIL
MAPPING FOR
HYDROLOGICAL
MODELLING George van Zijl
Johan van Tol
Eddie Riddell
Daniel Fundisi
Hard rock C horizon showing redox mottling
Prismatic impermeable horizon Permeable soil horizon
CONCEPTUAL HYDROLOGICAL RESPONSE MODEL
HYDROPEDOLOGY
?
?
Soil Map
AIMS
Create a soil map of area with DSM
Use soil map to create CHRM map
Use CHRM map to configure ACRU
Assess model outputs
HYPOTHESIS
Soil Information will improve model accuracy
STEVENSON HAMILTON RESEARCH SUPERSITE
• Geology: Granite
• MAP: 537 mm/a
• Vegetation: Savannah
• Land Use: Natural veld
MATERIAL AND METHODS
• Soil Map
– SoLIM rule based
– Expert knowledge approach
– Environmental covariates
• Satellite imagery (SPOT + Landsat)
• DEM - SUDEM (van Niekerk, 2012)
• Remotely sensed Biomass and ET (eLEAF)
– 119 Observations
– Functional soil class map
– 73% validation point accuracy
MATERIAL AND METHODS
• Soil Map
MATERIAL AND METHODS
• Soil Map
• Hillslopes
MATERIAL AND METHODS
• Soil Map
• Hillslopes
• CHRM
MODELLING
ACRU CONFIGURATIONS
• Lumped
– Average soil values for catchment
• ACRU 2000
– 2 Soil layers
– Groundwater store
• ACRUint
– 2 Soil Layers
– Int-ermediate vadoze zone
– Groundwater store
ACRU CONFIGURATION
THREE QUESTIONS
• Does the soil info improve the modelling?
– ACRU lumped vs ACRU 2000 and ACRUint
• Does the introduction of intermediate vadoze zone (IVZ)
improve modelling?
– ACRU 2000 vs ACRUint
• What is optimal scale for modelling?
– Stream Orders
– Time Series
STREAMFLOW MODEL OUTPUTS – 3RD ORDER
0
20
40
60
80
100
120
0
1
2
3
4
5
Rainfall
(mm)
Q
(mm
day
-1
)
Rainfall ACRU_lumped ACRU2000 ACRU_int Observed
0
100
200
300
400
500
600
0
20
40
60
80
100
120
140
160
2012/11/15
2012/11/22
2012/11/29
2012/12/06
2012/12/13
2012/12/20
2012/12/27
2013/01/03
2013/01/10
2013/01/17
2013/01/24
2013/01/31
2013/02/07
2013/02/14
2013/02/21
2013/02/28
2013/03/07
2013/03/14
Cum.
Rainfall
(mm)
Cum.
flow
(mm)
DOES SOIL INFO IMPROVE MODEL?
Catchment
Model run (level of
detail) R2 NS RMSE
1
st
order
ACRU_Lumped 0.49 -7.62 6.21
ACRU2000 0.57 -0.51 6.22
ACRU-Int 0.51 -0.71 6.62
2
nd
order
ACRU_Lumped 0.57 0.52 2.10
ACRU2000 0.83 0.72 1.55
ACRU-Int 0.87 0.79 1.36
3
rd
order
ACRU_Lumped 0.82 0.67 2.89
ACRU2000 0.90 0.72 2.68
ACRU-Int 0.91 0.73 2.63
DOES SOIL INFO IMPROVE MODEL?
Catchment
Model run (level of
detail) R2 NS RMSE
1
st
order
ACRU_Lumped 0.49 -7.62 6.21
ACRU2000 0.57 -0.51 6.22
ACRU-Int 0.51 -0.71 6.62
2
nd
order
ACRU_Lumped 0.57 0.52 2.10
ACRU2000 0.83 0.72 1.55
ACRU-Int 0.87 0.79 1.36
3
rd
order
ACRU_Lumped 0.82 0.67 2.89
ACRU2000 0.90 0.72 2.68
ACRU-Int 0.91 0.73 2.63
CONCLUSIONS
• Soil map for large area could be created with DSM
methods
• Soil map used to create hillslope based CHRM’s
• CHRM map could be used to configure ACRU
CONCLUSIONS
• Indications are:
• Soil info improved modelling
• Introduction of IVZ improved modelling
• 2nd / 3rd order best spatial scale to model at
• Inconclusive evidence for temporal scale
Water Research Commission
University of the Free State
SANPARKS
Faith Jumbi
Daniel Fundisi

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Soil_Mapping_Hydro-Modelling_GDSMW 2014.pdf

  • 1. DIGITAL SOIL MAPPING FOR HYDROLOGICAL MODELLING George van Zijl Johan van Tol Eddie Riddell Daniel Fundisi
  • 2. Hard rock C horizon showing redox mottling Prismatic impermeable horizon Permeable soil horizon CONCEPTUAL HYDROLOGICAL RESPONSE MODEL
  • 4. AIMS Create a soil map of area with DSM Use soil map to create CHRM map Use CHRM map to configure ACRU Assess model outputs HYPOTHESIS Soil Information will improve model accuracy
  • 5.
  • 6. STEVENSON HAMILTON RESEARCH SUPERSITE • Geology: Granite • MAP: 537 mm/a • Vegetation: Savannah • Land Use: Natural veld
  • 7. MATERIAL AND METHODS • Soil Map – SoLIM rule based – Expert knowledge approach – Environmental covariates • Satellite imagery (SPOT + Landsat) • DEM - SUDEM (van Niekerk, 2012) • Remotely sensed Biomass and ET (eLEAF) – 119 Observations – Functional soil class map – 73% validation point accuracy
  • 9. MATERIAL AND METHODS • Soil Map • Hillslopes
  • 10. MATERIAL AND METHODS • Soil Map • Hillslopes • CHRM
  • 12. ACRU CONFIGURATIONS • Lumped – Average soil values for catchment • ACRU 2000 – 2 Soil layers – Groundwater store • ACRUint – 2 Soil Layers – Int-ermediate vadoze zone – Groundwater store
  • 14. THREE QUESTIONS • Does the soil info improve the modelling? – ACRU lumped vs ACRU 2000 and ACRUint • Does the introduction of intermediate vadoze zone (IVZ) improve modelling? – ACRU 2000 vs ACRUint • What is optimal scale for modelling? – Stream Orders – Time Series
  • 15. STREAMFLOW MODEL OUTPUTS – 3RD ORDER 0 20 40 60 80 100 120 0 1 2 3 4 5 Rainfall (mm) Q (mm day -1 ) Rainfall ACRU_lumped ACRU2000 ACRU_int Observed 0 100 200 300 400 500 600 0 20 40 60 80 100 120 140 160 2012/11/15 2012/11/22 2012/11/29 2012/12/06 2012/12/13 2012/12/20 2012/12/27 2013/01/03 2013/01/10 2013/01/17 2013/01/24 2013/01/31 2013/02/07 2013/02/14 2013/02/21 2013/02/28 2013/03/07 2013/03/14 Cum. Rainfall (mm) Cum. flow (mm)
  • 16. DOES SOIL INFO IMPROVE MODEL? Catchment Model run (level of detail) R2 NS RMSE 1 st order ACRU_Lumped 0.49 -7.62 6.21 ACRU2000 0.57 -0.51 6.22 ACRU-Int 0.51 -0.71 6.62 2 nd order ACRU_Lumped 0.57 0.52 2.10 ACRU2000 0.83 0.72 1.55 ACRU-Int 0.87 0.79 1.36 3 rd order ACRU_Lumped 0.82 0.67 2.89 ACRU2000 0.90 0.72 2.68 ACRU-Int 0.91 0.73 2.63
  • 17. DOES SOIL INFO IMPROVE MODEL? Catchment Model run (level of detail) R2 NS RMSE 1 st order ACRU_Lumped 0.49 -7.62 6.21 ACRU2000 0.57 -0.51 6.22 ACRU-Int 0.51 -0.71 6.62 2 nd order ACRU_Lumped 0.57 0.52 2.10 ACRU2000 0.83 0.72 1.55 ACRU-Int 0.87 0.79 1.36 3 rd order ACRU_Lumped 0.82 0.67 2.89 ACRU2000 0.90 0.72 2.68 ACRU-Int 0.91 0.73 2.63
  • 18. CONCLUSIONS • Soil map for large area could be created with DSM methods • Soil map used to create hillslope based CHRM’s • CHRM map could be used to configure ACRU
  • 19. CONCLUSIONS • Indications are: • Soil info improved modelling • Introduction of IVZ improved modelling • 2nd / 3rd order best spatial scale to model at • Inconclusive evidence for temporal scale
  • 20. Water Research Commission University of the Free State SANPARKS Faith Jumbi Daniel Fundisi