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MIKE SHE Public Data Catalog

Australia

Version: 0.1 test template
Purpose: Country-specific public dataset catalog for building simple to advanced MIKE SHE models
Region: Australia (mainland and Tasmania)


Quick Start

Minimum Public Datasets for Recharge Modelling with MIKE SHE (Australia)

If your objective is to calculate distributed groundwater recharge (without simulating groundwater flow or rivers), only five dataset categories are required.

The datasets below are freely available, cover the whole of Australia, and provide an excellent starting point for building a physically based recharge model.

MIKE SHE Input Dataset Type Recommended Dataset Spatial Availability Why recommended
Topography (DEM) Gridded Geoscience Australia DEM-H (1 second SRTM, hydrologically enforced) Australia National ~30 m DEM that is already hydrologically conditioned, which makes it well suited for defining slopes, drainage pathways and overland-flow gradients.
Land Cover Gridded DEA Land Cover (Digital Earth Australia) Australia Annual 25 m Landsat-based land-cover maps from 1988 onward, useful for assigning vegetation types, impervious areas and overland-flow parameters for any simulation period.
Soil Hydraulic Properties Gridded Soil and Landscape Grid of Australia (SLGA) Australia National ~90 m soil property grids (texture, bulk density, available water capacity, depth) at standard depth intervals. Van Genuchten parameters must be derived with pedotransfer functions.
Precipitation Gridded SILO gridded data for daily, long-term modelling

BARRA2 reanalysis or ERA5-Land for hourly modelling
Australia SILO provides consistent daily rainfall from 1889 onward on a ~5 km grid and is the standard choice for long-term water-balance and recharge simulations. No free nationwide sub-daily radar product exists, so hourly reanalysis is the practical option for event-scale work.
Time Series BoM Climate Data Online

SILO Patched Point Data
Nationwide (station-dependent) Recommended whenever reliable local rain-gauge observations are available. SILO Patched Point Data are gap-filled BoM station records and can be used directly or for checking and bias-correcting gridded precipitation.
Meteorological Forcing / Potential ET Gridded SILO gridded data Australia Provides daily FAO-56 reference evapotranspiration together with temperature, vapour pressure and solar radiation in one spatially consistent product, making it Australia's equivalent to gridMET.
Time Series SILO Patched Point Data

BoM Climate Data Online (automatic weather stations)
Nationwide (station-dependent) Appropriate when complete local meteorological observations or calculated reference ET time series are available. These data can be assigned directly to climate zones or used to calculate potential evapotranspiration within MIKE SHE.

Optional Improvements

Dataset Purpose
ELVIS – Elevation and Depth Foundation Spatial Data High-resolution LiDAR DEMs (1–5 m) where available
ASRIS and state soil mapping More detailed local soil information
MODIS MCD15A3H Dynamic Leaf Area Index (LAI)
Digital Earth Australia Sentinel-2 Verification and updating of land-cover maps
CMRSET actual ET (TERN) Validation of simulated actual evapotranspiration
AWRA-L / Australian Water Outlook Plausibility check of simulated recharge (deep drainage), soil moisture and actual ET
SMAP Regional soil-moisture validation

  1. Download the Geoscience Australia DEM-H.
  2. Delineate the model domain and prepare the terrain model.
  3. Download DEA Land Cover for the simulation period and assign MIKE SHE vegetation classes.
  4. Download SLGA soil grids and derive van Genuchten parameters using pedotransfer functions.
  5. Choose your meteorological forcing:
  6. Option A (recommended): Use SILO gridded data for a fully gridded daily model setup, supplemented by BARRA2 or ERA5-Land where hourly forcing is needed.
  7. Option B: Import precipitation and meteorological observations from SILO Patched Point Data or BoM Climate Data Online directly into MIKE SHE.
  8. Let MIKE SHE calculate evapotranspiration internally using the selected vegetation and soil parameters.
  9. Check simulated recharge and actual ET against AWRA-L and CMRSET.
  10. Export the distributed groundwater recharge for use in MODFLOW, FEFLOW, or other groundwater models.

1. Introduction for advanced data sources

1.1 Purpose

This document summarizes public datasets that can be used to construct a physically based MIKE SHE model for Australia.

The catalog is organized according to the typical MIKE SHE model-building workflow rather than only by dataset type. It covers datasets for:

  • terrain and overland flow
  • land cover and vegetation
  • meteorological forcing
  • potential and actual evapotranspiration
  • rivers, lakes, reservoirs, and wetlands
  • soil and unsaturated-zone parameterization
  • groundwater and hydrogeology
  • pumping, irrigation, and water management
  • calibration and validation

1.2 Intended Use

This catalog is intended for:

  • rapid screening models
  • regional water-balance models
  • groundwater recharge studies
  • surface-water / groundwater interaction studies
  • groundwater-dependent ecosystem (GDE) assessments
  • irrigation and water-use assessments
  • mining and coal seam gas impact assessments
  • applied MIKE SHE model setup

1.3 General Notes for Australia

  • Most Australian federal and state datasets are released under Creative Commons Attribution (CC BY 4.0). Always check the individual license before redistribution.
  • The national datum is GDA2020. Projected models typically use the relevant MGA2020 zone (zones 49–56). Older datasets may still be in GDA94 and need a datum transformation (~1.8 m shift).
  • Many national datasets are hosted by Geoscience Australia (GA), the Bureau of Meteorology (BoM), TERN, CSIRO, and Digital Earth Australia (DEA). State agencies hold the most detailed groundwater, licensing, and monitoring data.

2. Hydrological Characteristics of Australia

2.1 Climate

Australia covers several strong climatic gradients:

  • tropical monsoonal climate in the north with a pronounced summer wet season
  • arid and semi-arid climate across most of the interior (around 70% of the continent)
  • temperate climate in the south-east with year-round or winter-dominant rainfall
  • Mediterranean climate in south-western Western Australia and parts of South Australia
  • alpine climate with seasonal snow in the Australian Alps and Tasmanian highlands
  • strong inter-annual variability driven by ENSO and the Indian Ocean Dipole
  • prolonged multi-year droughts (e.g. the Millennium Drought, 2001–2009)
  • tropical cyclone influence along northern and north-eastern coasts
  • east-coast lows and major flood events in eastern Australia

2.2 Topography

Major topographic settings include:

  • Great Dividing Range and eastern highlands
  • narrow eastern coastal plains
  • Murray-Darling Basin lowlands and riverine plains
  • Central Lowlands and Great Artesian Basin
  • Western Plateau and arid shield regions
  • Nullarbor Plain (extensive karst)
  • Channel Country with anabranching, low-gradient floodplains
  • Tasmanian highlands
  • coastal sand plains (e.g. Swan Coastal Plain)

2.3 Major Hydrological Challenges

Important Australian modelling challenges include:

  • very low and highly episodic recharge in semi-arid and arid regions
  • dryland and irrigation salinity driven by rising saline water tables
  • groundwater and surface-water over-allocation, particularly in the Murray-Darling Basin
  • ephemeral and intermittent rivers with large transmission losses
  • episodic floods on very flat floodplains
  • groundwater-dependent ecosystems and environmental water requirements
  • deep-rooted native vegetation (e.g. eucalypts) accessing groundwater
  • land-cover change following bushfires and land clearing
  • mining dewatering and coal seam gas impacts on aquifers
  • seawater intrusion in coastal aquifers
  • regulated rivers, water markets, and sustainable diversion limits

2.4 Major Aquifer Systems

Important aquifers and groundwater systems include:

  • Great Artesian Basin
  • Murray Basin (e.g. Murray Group limestone, Renmark Group)
  • Perth Basin (Superficial, Leederville, and Yarragadee aquifers, Gnangara Mound)
  • Otway Basin
  • Canning Basin
  • Daly Basin (Tindall Limestone)
  • Namoi, Condamine, Lachlan, and Murrumbidgee alluvial aquifers
  • Burdekin Delta aquifers
  • Gippsland Basin
  • fractured-rock aquifers of the eastern highlands

3. Recommended Dataset Stack

Component Recommended Dataset Alternative Dataset Importance
DEM GA DEM-H ELVIS LiDAR, Copernicus GLO-30 ★★★★★
Land cover DEA Land Cover ESA WorldCover, ABARES Land Use (CLUM) ★★★★★
Native vegetation NVIS DEA Fractional Cover ★★★★☆
LAI MODIS MCD15A3H Sentinel-2 derived LAI via DEA ★★★★☆
Precipitation SILO AGCD (BoM), BARRA2, ERA5-Land ★★★★★
Climate forcing SILO BARRA2, ERA5-Land ★★★★★
Potential ET SILO (FAO-56) AWRA-L / Australian Water Outlook ★★★★★
Rivers BoM Geofabric GA Surface Hydrology, HydroRIVERS ★★★★★
Lakes / reservoirs GA Surface Hydrology BoM Water Storage ★★★★☆
Inundation / wetlands DEA Water Observations GDE Atlas ★★★★☆
Soil SLGA ASRIS ★★★★★
Hydrogeology BoM NGIS Australian Groundwater Insight, state geological surveys ★★★★★
Groundwater heads BoM Groundwater Explorer State groundwater portals ★★★★★
Pumping State water licensing registers BoM National Water Account ★★★★☆
Streamflow calibration BoM Water Data Online Hydrologic Reference Stations, state portals ★★★★★
Actual ET validation CMRSET (TERN) OzFlux, AWRA-L, MODIS MOD16 ★★★★★
Soil moisture validation SMAP AWRA-L, OzNet ★★★★☆
Recharge plausibility AWRA-L deep drainage Published chloride mass balance studies ★★★★☆

4. Terrain Model

4.1 Purpose in MIKE SHE

Terrain data are required for:

  • model surface elevation
  • overland-flow gradients
  • surface-storage controls
  • catchment delineation
  • river network verification
  • floodplain and wetland connectivity

4.2 Dataset Comparison

Dataset Coverage Resolution Format MIKE SHE Suitability Advantages Limitations Recommendation
GA DEM-H Australia ~30 m (1 arc-second) GeoTIFF / web services Primary regional DEM Hydrologically enforced, vegetation offsets partly removed, national coverage Based on SRTM (2000); limited accuracy on very flat floodplains ★★★★★
GA DEM-S Australia ~30 m GeoTIFF Terrain derivatives Smoothed, suited to slope and terrain analysis Not drainage-enforced ★★★★☆
ELVIS LiDAR DEMs Populated areas, Murray-Darling Basin, coasts 1 m to 5 m GeoTIFF Local and floodplain models Highest accuracy; essential on flat terrain Patchy coverage; large data volumes ★★★★★ (where available)
Copernicus GLO-30 Global 30 m GeoTIFF Backup DEM More recent than SRTM Surface model; not drainage-enforced ★★★☆☆
FABDEM Global 30 m GeoTIFF Forested / urban support Buildings and forests removed Coarser than LiDAR ★★★☆☆

4.3 Typical Preprocessing

  • reproject to GDA2020 / MGA zone
  • clip to model domain plus buffer
  • use DEM-H where possible to avoid additional sink filling
  • merge LiDAR tiles for floodplains and channels where available
  • resample to model grid
  • compare drainage paths with Geofabric streams
  • smooth only where needed for numerical stability

4.4 Quality Checks

  • confirm river channels follow topographic lows
  • check flat plains (Murray-Darling lowlands, Channel Country) for artificial flow directions
  • check levees, irrigation channels, and on-farm storages that SRTM does not resolve
  • verify coastal elevations in estuarine and coastal-aquifer models
  • compare derived catchments with Geofabric contracted catchments

5. Surface Water

5.1 Rivers

Dataset Coverage Format MIKE SHE / MIKE 1D Use Advantages Limitations Recommendation
BoM Geofabric Australia Vector GIS (streams, catchments, topology) River network, catchments, topology National hydrological backbone with connectivity Requires simplification for hydraulic routing ★★★★★
GA Surface Hydrology Australia Vector GIS Rivers, lakes, water bodies Authoritative national mapping Less topology than Geofabric ★★★★☆
HydroRIVERS Global Vector GIS Fallback river network Global consistency Less detailed than national products ★★☆☆☆

5.2 Lakes and Reservoirs

Dataset Use Recommendation
GA Surface Hydrology Lake and reservoir polygons ★★★★☆
BoM Water Storage Storage levels and volumes for major reservoirs ★★★★☆
DEA Water Observations Observed water extent and inundation frequency since 1987 ★★★★★

5.3 Wetlands and Groundwater-Dependent Ecosystems

Potential sources:

Wetland and GDE data are useful for overland-flow validation, environmental-flow and GDE studies, and surface storage parameterization.

5.4 Typical Preprocessing

  • simplify river network
  • remove minor branches not relevant at model scale
  • identify ephemeral and intermittent reaches
  • align river network with DEM
  • define cross-sections or approximate channel geometry
  • define river-bed conductance and consider transmission losses
  • include weirs, regulators, and irrigation offtakes on regulated rivers
  • assign river boundary conditions
  • check connection to reservoirs, lakes, and anabranches

6. Land Cover and Vegetation

6.1 Purpose in MIKE SHE

Land cover and vegetation define:

  • interception
  • evapotranspiration parameters
  • root depth
  • crop coefficients
  • Manning roughness
  • irrigation zones
  • impervious areas
  • surface detention/storage behavior

6.2 Dataset Comparison

Dataset Coverage Resolution Format MIKE SHE Use Advantages Limitations Recommendation
DEA Land Cover Australia 25 m, annual since 1988 Raster Primary land-cover zones Consistent national time series; supports land-cover change FAO LCCS legend needs hydrological reclassification ★★★★★
ABARES Catchment Scale Land Use (CLUM) Australia 50 m Raster Land use, irrigated vs dryland agriculture Distinguishes irrigated land uses Compiled from sources of varying dates ★★★★★
NVIS Australia ~100 m Raster / vector Native vegetation groups Distinguishes eucalypt forests, woodlands, shrublands, grasslands Pre-clearing and present extents must be distinguished ★★★★☆
ESA WorldCover Global 10 m Raster Alternative land-cover map High spatial resolution Only 2020 and 2021 ★★★★☆
Dynamic World Global 10 m Cloud / Earth Engine Recent land-cover dynamics Near-real-time change detection Requires postprocessing ★★★☆☆

6.3 Vegetation Datasets

Parameter Dataset Use Recommendation
LAI MODIS MCD15A3H Seasonal LAI time series ★★★★☆
Fractional cover DEA Fractional Cover Green / non-green / bare ground dynamics, post-fire recovery ★★★★☆
NDVI MODIS / DEA Sentinel-2 Vegetation activity and crop seasonality ★★★★☆
Root depth NVIS + literature Root-depth assignment by vegetation group ★★★★☆
Crop coefficient FAO-56 Agricultural ET parameterization ★★★★☆

6.4 Typical Preprocessing

  • reclassify DEA Land Cover classes into MIKE SHE vegetation zones
  • overlay CLUM to separate irrigated and dryland agriculture
  • use NVIS to separate eucalypt forest, woodland, shrubland, and grassland
  • assign deep rooting depths to native woody vegetation where groundwater uptake is plausible
  • assign LAI curves or seasonal LAI maps
  • consider land-cover change after bushfires or clearing for long simulations
  • assign roughness values for overland flow

7. Meteorological Forcing

7.1 Precipitation

Dataset Coverage Resolution Temporal Resolution MIKE SHE Use Advantages Limitations Recommendation
SILO Australia ~5 km (0.05°) Daily, since 1889 Primary rainfall forcing Long, complete, interpolated from BoM stations Daily only; smoothing in data-sparse interior ★★★★★
AGCD (BoM) Australia ~5 km Daily / monthly Alternative rainfall forcing Official BoM gridded analysis Daily only ★★★★☆
BARRA2 Australia 4.4 km to 12 km Hourly Sub-daily and event forcing Regional reanalysis, physically consistent Model-based; bias correction recommended ★★★★☆
ERA5-Land Global ~9 km Hourly Backup sub-daily forcing Easy access, consistent Coarser; convective rainfall poorly represented ★★★☆☆

7.2 Climate Variables

Variable Recommended Dataset Alternatives MIKE SHE Use
Air temperature SILO BARRA2, ERA5-Land ET, snow/rain distinction
Wind speed BARRA2 ERA5-Land, BoM AWS Penman-Monteith / Shuttleworth-Wallace
Vapour pressure / humidity SILO BARRA2, BoM AWS Vapour-pressure deficit
Solar radiation SILO BARRA2, NASA POWER ET energy term
Reference ET SILO (FAO-56 short crop) AWRA-L PET / ETo forcing or validation

Note: SILO does not provide gridded wind speed. If MIKE SHE should calculate ET internally from full meteorology, combine SILO with BARRA2 or ERA5-Land wind, or use SILO reference ET directly.

7.3 Potential ET

Dataset Coverage Resolution Temporal Resolution Use Recommendation
SILO Australia ~5 km Daily Distributed FAO-56 reference ET (also ASCE tall crop and Morton estimates) ★★★★★
SILO Patched Point Data Station locations Point Daily Local ETo time series ★★★★☆
AWRA-L Australia ~5 km Daily Potential ET comparison ★★★☆☆

7.4 Snow

Snow is secondary for most Australian models but relevant in the Australian Alps (Snowy Mountains, Victorian Alps) and the Tasmanian highlands.

Dataset Use Recommendation
MODIS Snow Cover Snow extent validation ★★★☆☆
ERA5-Land Snow water equivalent screening ★★☆☆☆

8. Soil Data

8.1 Purpose in MIKE SHE

Soil data control:

  • infiltration
  • water retention
  • evapotranspiration limitation
  • recharge generation
  • capillary rise
  • soil-water storage
  • runoff generation

8.2 Dataset Comparison

Dataset Coverage Resolution Parameters MIKE SHE Use Advantages Limitations Recommendation
SLGA Australia ~90 m Clay, silt, sand, bulk density, AWC, soil depth, depth of regolith Primary distributed UZ parameterization National, six standard depth intervals to 2 m, uncertainty bounds Van Genuchten parameters require pedotransfer functions ★★★★★
ASRIS Australia Mapped units Soil properties and profiles Detailed local model Links to measured soil profiles Variable detail between regions ★★★★☆
State soil mapping State-specific Detailed map units Soil landscapes and profiles Local models Highest local detail Different formats per state ★★★★☆
SoilGrids Global 250 m Global soil properties Backup Easy global access Less accurate than SLGA for Australia ★★☆☆☆

8.3 Required Soil Parameters

Typical MIKE SHE soil parameters include:

  • saturated hydraulic conductivity
  • residual water content
  • saturated water content
  • van Genuchten alpha
  • van Genuchten n
  • field capacity
  • wilting point
  • bulk density
  • soil layering and soil depth

8.4 Typical Preprocessing

  • select relevant SLGA depth intervals
  • derive van Genuchten parameters and Ks with suitable pedotransfer functions
  • harmonize soil layers with MIKE SHE unsaturated-zone layers
  • use depth of regolith to inform unsaturated-zone thickness
  • resample to model grid
  • aggregate detailed soil classes
  • check for texture-contrast (duplex) soils, which are common in Australia
  • check unrealistic Ks values
  • calibrate sensitive parameters against runoff, groundwater heads, ET, and soil moisture

9. Hydrogeology

9.1 Purpose

Hydrogeologic data are required for:

  • defining aquifer boundaries
  • defining model layers
  • hydraulic conductivity zones
  • storage zones
  • specific yield
  • groundwater boundary conditions
  • conceptual groundwater model development

9.2 Dataset Comparison

Dataset Coverage Use Advantages Limitations Recommendation
BoM National Groundwater Information System (NGIS) Australia Bores, lithology, hydrostratigraphy, 3D aquifer surfaces Best national groundwater database Parameter values require interpretation ★★★★★
Australian Groundwater Insight Australia Aquifer context, levels, salinity, trends Easy national overview Summary level ★★★★☆
State geological surveys and groundwater reports State-specific Local aquifer geometry and properties Most detailed information Format and quality vary ★★★★★
GA Geological Maps Australia Geological framework National consistency Requires hydrogeological translation ★★★★☆
GLHYMPS Global Permeability screening Useful fallback Too generalized for local models ★★☆☆☆

9.3 Conceptual Model Recommendations

For Australia, special attention should be paid to:

  • confined artesian systems of the Great Artesian Basin
  • thick regolith and deep unsaturated zones in semi-arid regions
  • karst systems (Nullarbor, Murray Group limestone, Tindall Limestone)
  • saline groundwater and dryland salinity processes
  • coastal sand aquifers and seawater intrusion (e.g. Swan Coastal Plain)
  • fractured-rock aquifers in the eastern highlands
  • alluvial aquifers with irrigation return flow
  • focused recharge through ephemeral streams and floodouts versus diffuse recharge

10. Groundwater Data

10.1 Initial Heads and Monitoring Wells

Dataset Coverage Use Advantages Limitations Recommendation
BoM Groundwater Explorer Australia Groundwater levels and bore data National compilation from NGIS Monitoring density varies ★★★★★
WaterNSW New South Wales Groundwater levels Detailed state monitoring State-specific ★★★★☆
Victorian Water Measurement Information System Victoria Groundwater levels Detailed state monitoring State-specific ★★★★☆
Queensland Water Monitoring Information Portal Queensland Groundwater levels Detailed state monitoring State-specific ★★★★☆
WaterConnect South Australia Groundwater levels and salinity Detailed state monitoring State-specific ★★★★☆
Water Information Reporting Western Australia Groundwater levels Detailed state monitoring State-specific ★★★★☆

10.2 Pumping Wells and Water Use

Dataset Coverage Use Advantages Limitations Recommendation
State water licensing registers State-specific Licensed entitlements and metered use Most detailed source Metering incomplete; licensed ≠ actual use ★★★★☆
BoM National Water Account Selected regions Regional water use and abstraction Consistent accounting Aggregated ★★★☆☆
ABS Water Account Australia Sector-level water use National statistics Highly aggregated ★★☆☆☆

10.3 Boundary Conditions

Potential boundary-condition sources:

Boundary Type Source Comment
Coastal boundary Shoreline and sea-level assumptions Relevant for coastal aquifers and seawater intrusion
River boundary BoM Geofabric, BoM Water Data Online River stages may require hydraulic modelling
No-flow boundary Groundwater divides, geologic boundaries Must be justified conceptually
Pumping wells State licensing registers Major uncertainty in many models
Regional flux NGIS, existing regional models Relevant for Great Artesian Basin and large sedimentary basins

11. Water Management

11.1 Relevant Processes

Water management is often central in Australian models:

  • irrigation
  • groundwater pumping
  • surface-water diversions and regulated rivers
  • reservoirs and on-farm storages
  • irrigation channels and drainage schemes
  • municipal, industrial, and mining water use
  • managed aquifer recharge
  • environmental water delivery
  • water entitlements, trading, and sustainable diversion limits

11.2 Dataset Sources

Topic Dataset / Agency Use
Groundwater pumping State water licensing registers Pumping estimates and entitlements
Basin water management Murray-Darling Basin Authority Sustainable diversion limits, basin plans, environmental water
Water accounting BoM National Water Account Regional water balance and use
Reservoirs BoM Water Storage Reservoir storage and water supply context
Irrigated areas ABARES CLUM Irrigation zone definition
Irrigation ET CMRSET (TERN) Field-scale ET and irrigation water-use validation

12. Remote Sensing Products

Dataset Coverage Resolution Use Recommendation
CMRSET (TERN) Australia 30 m (Landsat) Actual ET validation and irrigation water use ★★★★★
DEA Water Observations Australia 25–30 m Flood extent, inundation frequency, wetland dynamics ★★★★★
DEA Fractional Cover Australia 30 m Vegetation and bare-ground dynamics ★★★★☆
MODIS MOD16 Global 500 m Regional actual ET validation ★★★☆☆
SMAP Global Coarse Soil moisture validation ★★★★☆
GRACE / GRACE-FO Global Very coarse (~300 km) Basin-scale total water storage change ★★★☆☆
Sentinel-1 SAR Global 10 m Flood extent and wetness mapping ★★★★☆
Sentinel-2 (DEA) Australia 10 m Land cover and vegetation dynamics ★★★★☆
Landsat (DEA) Australia 30 m Long-term vegetation, land cover, ET support ★★★★☆
ECOSTRESS Selected coverage ~70 m Surface temperature and plant water stress ★★★☆☆

13. Calibration Datasets

Target Dataset Use Recommendation
River discharge BoM Water Data Online Streamflow calibration ★★★★★
Unregulated reference catchments Hydrologic Reference Stations High-quality streamflow in minimally disturbed catchments ★★★★★
Groundwater heads BoM Groundwater Explorer / state portals Saturated-zone calibration ★★★★★
Actual ET (distributed) CMRSET (TERN) ET validation ★★★★★
Actual ET (point) OzFlux Eddy-covariance flux towers ★★★★☆
Soil moisture SMAP / OzNet Regional and in-situ UZ validation ★★★★☆
Recharge AWRA-L / published chloride mass balance studies Recharge plausibility ★★★★☆
Reservoir storage BoM Water Storage Reservoir/system validation ★★★★☆
Inundation extent DEA Water Observations Overland-flow and floodplain validation ★★★★☆

A robust Australian MIKE SHE model should avoid calibration against only discharge. Recommended targets are:

  1. river discharge at BoM or state gauges, preferably including Hydrologic Reference Stations
  2. groundwater heads in representative bores
  3. seasonal and annual actual ET patterns (CMRSET, OzFlux)
  4. inundation extent on floodplains and wetlands (DEA Water Observations)
  5. water-balance and recharge plausibility by catchment (AWRA-L, published recharge estimates)
  6. irrigation or pumping estimates where relevant

Because rainfall variability is extreme, calibration and validation periods should include both dry and wet phases (e.g. drought years and major flood years).


14. Typical MIKE SHE Workflow

  1. Define modelling objective and domain.
  2. Download and preprocess GA DEM-H, adding ELVIS LiDAR where available.
  3. Delineate catchments and surface drainage.
  4. Build river network from BoM Geofabric.
  5. Prepare land cover from DEA Land Cover and ABARES CLUM.
  6. Assign vegetation parameters from MODIS MCD15A3H, NVIS, and literature.
  7. Prepare precipitation from SILO or BARRA2.
  8. Prepare climate forcing and reference ET from SILO.
  9. Prepare soil properties from SLGA using pedotransfer functions.
  10. Build hydrogeological layers from NGIS and state reports.
  11. Import initial groundwater heads from BoM Groundwater Explorer and state portals.
  12. Add pumping, irrigation, and water-use data where relevant.
  13. Couple rivers and groundwater.
  14. Calibrate discharge and groundwater heads.
  15. Validate actual ET against CMRSET and recharge against AWRA-L.
  16. Document assumptions and uncertainties.

15. Minimum Dataset Package

For a simple screening model:

Model Element Dataset
DEM GA DEM-H
Land cover DEA Land Cover
Precipitation SILO
Climate forcing SILO
Reference ET SILO
Rivers BoM Geofabric
Soils SLGA
Aquifers BoM NGIS
Streamflow BoM Water Data Online
Groundwater heads BoM Groundwater Explorer

16. Recommended Dataset Package

For a professional regional MIKE SHE model:

Model Element Dataset
DEM GA DEM-H + ELVIS LiDAR on floodplains
Sub-daily precipitation BARRA2, bias-corrected against SILO
Climate forcing SILO
Local climate validation SILO Patched Point Data / BoM Climate Data Online
Land cover DEA Land Cover + ABARES CLUM
Vegetation MODIS MCD15A3H + NVIS
Soils SLGA + ASRIS / state soil mapping
Hydrogeology BoM NGIS + state geological reports
Groundwater heads BoM Groundwater Explorer + state portals
Pumping State licensing registers + BoM National Water Account
Actual ET CMRSET + OzFlux
Inundation DEA Water Observations
Soil moisture SMAP

17. Premium Dataset Package

For high-quality consulting, regulatory, or research models, add:

Dataset Type Possible Source Purpose
Local LiDAR and bathymetry State / council datasets, ELVIS High-resolution floodplain and channel geometry
Local rain gauges Water authorities / councils / BoM sub-daily data Precipitation bias correction and event forcing
Metered pumping records State water agencies Pumping stress refinement
Local geological models State geological surveys / consultants Aquifer layering and hydraulic properties
Pumping tests Reports / bore completion records Hydraulic conductivity and storage calibration
River and storage operations River operators / water authorities / MDBA Managed river systems
Field soil data Local surveys / soil profile databases Unsaturated-zone parameter validation
Irrigation and crop records Irrigation districts / remote sensing Irrigation demand and water use
Groundwater chemistry and isotopes State databases / research studies Recharge mechanisms and groundwater age

18. Dataset Comparison Table Template

Use this table for adding new datasets.

Dataset Coverage Spatial Resolution Temporal Resolution Time Period Format API / Access License MIKE SHE Use Advantages Limitations Recommendation
★☆☆☆☆

19. Data Preparation Checklist

Terrain

  • [ ] DEM downloaded
  • [ ] DEM projected to GDA2020 / MGA zone
  • [ ] DEM clipped
  • [ ] LiDAR merged where available
  • [ ] drainage paths checked

Surface Water

  • [ ] river network downloaded
  • [ ] river network simplified
  • [ ] ephemeral reaches identified
  • [ ] river elevations checked
  • [ ] reservoirs, weirs, and offtakes identified
  • [ ] boundary conditions assigned

Land Cover and Vegetation

  • [ ] land-cover map downloaded for simulation period
  • [ ] classes reclassified
  • [ ] irrigated areas defined from CLUM
  • [ ] native vegetation zones defined
  • [ ] LAI assigned
  • [ ] rooting depths assigned

Weather

  • [ ] precipitation downloaded
  • [ ] climate variables downloaded
  • [ ] PET / ETo checked
  • [ ] wind speed source defined if ET is calculated internally
  • [ ] time series gap-checked
  • [ ] units converted
  • [ ] model forcing files prepared

Soil

  • [ ] soil data downloaded
  • [ ] pedotransfer functions applied
  • [ ] soil layers harmonized
  • [ ] parameter zones created
  • [ ] unrealistic values checked

Groundwater

  • [ ] aquifer boundaries downloaded
  • [ ] hydrogeologic layers defined
  • [ ] initial heads interpolated
  • [ ] pumping data added
  • [ ] boundary conditions defined

Calibration and Validation

  • [ ] discharge gauges selected
  • [ ] groundwater bores selected
  • [ ] CMRSET / OzFlux data prepared
  • [ ] AWRA-L recharge prepared for comparison
  • [ ] soil moisture data prepared if needed
  • [ ] calibration periods defined (dry and wet phases)
  • [ ] validation periods defined

20. References and Official Data Portals


21. Notes on Uncertainty

Important uncertainties for Australian MIKE SHE models include:

  • rainfall interpolation in data-sparse inland regions
  • convective and cyclonic rainfall intensity at sub-daily scale
  • very low recharge rates that are sensitive to small errors in ET and soil parameters
  • episodic, event-driven recharge that depends on rare wet years
  • soil hydraulic parameters derived via pedotransfer functions
  • rooting depth and groundwater uptake of native vegetation
  • groundwater pumping and irrigation volumes (licensed vs actual use)
  • transmission losses in ephemeral rivers
  • river-bed conductance uncertainty
  • regulated river and reservoir operations
  • coastal boundary assumptions and seawater intrusion
  • mismatch between satellite ET and modelled ET
  • land-cover change due to bushfires, clearing, and drought
  • aggregation from fine datasets to model-grid resolution

A defensible model should document dataset choices, preprocessing assumptions, calibration strategy, validation results, and known limitations.


22. State, Territory and Basin Supplements

State-specific and basin-specific data sources are documented in separate supplements:

Supplement File
New South Wales and ACT DataSources_AUS_NSW_ACT.md
Victoria DataSources_AUS_VIC.md
Queensland DataSources_AUS_QLD.md
South Australia DataSources_AUS_SA.md
Western Australia DataSources_AUS_WA.md
Tasmania DataSources_AUS_TAS.md
Northern Territory DataSources_AUS_NT.md
Murray-Darling Basin DataSources_AUS_Murray_Darling_Basin.md
Great Artesian Basin DataSources_AUS_Great_Artesian_Basin.md