MIKE SHE Public Data Catalog¶
New Zealand¶
Version: 0.1 test template
Purpose: Country-specific public dataset catalog for building simple to advanced MIKE SHE models
Region: New Zealand (North Island, South Island and nearby islands)
Quick Start¶
Minimum Public Datasets for Recharge Modelling with MIKE SHE (New Zealand)¶
If your objective is to calculate distributed groundwater recharge (without simulating groundwater flow or rivers), only five dataset categories are required.
The datasets below cover the whole of New Zealand and provide an excellent starting point for building a physically based recharge model. Most are free under CC BY 4.0; access conditions for gridded climate data are noted below.
| MIKE SHE Input | Dataset Type | Recommended Dataset | Spatial Availability | Why recommended |
|---|---|---|---|---|
| Topography (DEM) | Gridded | LINZ national elevation data – LiDAR 1 m DEM where available, NZ 8 m DEM elsewhere | New Zealand | National LiDAR now covers most of the country at 1 m, with the 8 m DEM as a seamless national fallback for defining slopes, drainage pathways and overland-flow gradients. |
| Land Cover | Vector / gridded | Land Cover Database (LCDB) | New Zealand | Standard national land-cover map with several epochs since 1996, suitable for assigning vegetation types, impervious areas and overland-flow parameters. |
| Soil Hydraulic Properties | Vector | S-map where available Fundamental Soil Layers (FSL) for full coverage |
S-map: most productive land FSL: New Zealand |
S-map provides soil layering, drainage class, saturated hydraulic conductivity and water retention for each soil sibling. FSL fills gaps in hill and high country at a coarser level. |
| Precipitation | Gridded | NIWA Virtual Climate Station Network (VCSN) for daily, long-term modelling ERA5-Land as a fully free hourly alternative |
New Zealand | VCSN is the national standard daily climate grid (~5 km) interpolated from station data. Check NIWA access and licence conditions, especially for commercial use. ERA5-Land is freely available but coarse for New Zealand's steep rainfall gradients. |
| Time Series | CliFlo (NIWA National Climate Database) Regional council rainfall networks |
Nationwide (station-dependent) | Recommended whenever reliable local rain-gauge observations are available. Regional councils often operate denser networks than the national database. | |
| Meteorological Forcing / Potential ET | Gridded | NIWA VCSN | New Zealand | Provides daily Penman and Priestley-Taylor PET together with temperature, vapour pressure, solar radiation and wind speed in one spatially consistent product. |
| Time Series | CliFlo Regional council climate stations |
Nationwide (station-dependent) | Appropriate when complete local meteorological observations or calculated PET 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 |
|---|---|
| OpenTopography – New Zealand LiDAR | Direct access to LiDAR point clouds and DEM tiles |
| Irrigated land area (MfE) | Mapping of irrigated areas |
| MODIS MCD15A3H | Dynamic Leaf Area Index (LAI) |
| Sentinel-2 | Verification and updating of land-cover maps |
| MODIS MOD16 / SSEBop | Validation of simulated actual evapotranspiration (OpenET does not cover New Zealand) |
| Regional council lysimeter data | Direct validation of drainage / recharge (e.g. Canterbury) |
| SMAP | Regional soil-moisture validation |
Recommended Workflow¶
- Download the LINZ LiDAR DEM (or the NZ 8 m DEM where LiDAR is missing).
- Delineate the model domain and prepare the terrain model.
- Download LCDB for the simulation period and assign MIKE SHE vegetation classes.
- Download S-map and FSL and derive soil hydraulic parameters.
- Choose your meteorological forcing:
- Option A (recommended): Use NIWA VCSN for a fully gridded daily model setup, supplemented by ERA5-Land where hourly forcing is needed.
- Option B: Import precipitation and meteorological observations from CliFlo or regional council stations directly into MIKE SHE.
- Let MIKE SHE calculate evapotranspiration internally using the selected vegetation and soil parameters.
- Check simulated drainage against lysimeter data where available.
- 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 New Zealand.
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
- snow and glaciers
- rivers, lakes, and wetlands
- soil and unsaturated-zone parameterization
- groundwater and hydrogeology
- water takes, 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 and nitrate leaching studies
- surface-water / groundwater interaction studies, including braided rivers and spring-fed streams
- irrigation and water-allocation assessments
- flood and catchment studies
- applied MIKE SHE model setup
1.3 General Notes for New Zealand¶
- National datasets from LINZ and the Ministry for the Environment (MfE) are generally released under CC BY 4.0. Some Manaaki Whenua – Landcare Research and NIWA products (e.g. S-map, VCSN) have their own licence terms, which may restrict commercial use. Always check before use.
- NIWA and GNS Science were merged into Earth Sciences New Zealand in 2025. Some portals and links may move as a result.
- The national datum is NZGD2000, and models typically use NZTM2000 (EPSG:2193). The national vertical datum is NZVD2016; older data may refer to local vertical datums.
- Most groundwater, streamflow, and water-take data are held by the regional councils and unitary authorities (see Section 22), not by national agencies.
- Engagement with iwi and hapū is an integral part of freshwater projects, and mātauranga Māori can be an important source of catchment knowledge.
2. Hydrological Characteristics of New Zealand¶
2.1 Climate¶
New Zealand covers very strong climatic gradients over short distances:
- temperate maritime climate with prevailing westerly airflow
- extreme west–east rainfall gradient across the Southern Alps, from several metres per year on the West Coast to around 350 mm per year in Central Otago
- subtropical climate in Northland
- drought-prone eastern regions (e.g. Hawke's Bay, Canterbury, Marlborough)
- ex-tropical cyclones and atmospheric rivers causing extreme floods (e.g. Cyclone Gabrielle, 2023)
- seasonal snow and glaciers in the Southern Alps and central North Island volcanoes
- climate variability linked to ENSO and the Southern Annular Mode
2.2 Topography¶
Major topographic settings include:
- Southern Alps and steep mountain catchments
- Canterbury Plains with braided rivers and large alluvial fans
- Taupō Volcanic Zone and central North Island volcanic plateau
- Waikato and Hauraki lowlands with extensive peat soils
- intermontane basins of Otago and Marlborough
- coastal plains (e.g. Heretaunga, Manawatū, Waimea)
- steep, erodible hill country on the east coast of the North Island
2.3 Major Hydrological Challenges¶
Important New Zealand modelling challenges include:
- nitrate leaching from intensive agriculture and long groundwater lag times
- losing braided rivers that recharge major gravel aquifers
- spring-fed lowland streams depending on groundwater
- irrigation expansion and water allocation limits
- flash floods, landslides, and sediment in steep catchments
- peat subsidence and drainage in lowland areas
- seawater intrusion in coastal aquifers
- snowmelt and glacier contributions in alpine catchments
- highly permeable volcanic soils and ignimbrites
- nutrient loads to lakes (e.g. Lake Taupō, Rotorua lakes)
2.4 Major Aquifer Systems¶
Important aquifers include:
- Canterbury Plains gravel aquifers (including the Christchurch–West Melton system)
- Heretaunga Plains aquifer system (Hawke's Bay)
- Wairau Aquifer (Marlborough)
- Waimea Plains aquifers (Tasman)
- Waiwhetū Artesian Aquifer (Hutt Valley, Wellington)
- Taupō Volcanic Zone ignimbrite aquifers (e.g. Rotorua)
- Auckland volcanic field basalt aquifers
- Arthur Marble Aquifer and Te Waikoropupū Springs (Tasman, karst)
- Ruataniwha Basin (Hawke's Bay)
- Southland and Otago alluvial aquifers
3. Recommended Dataset Stack¶
| Component | Recommended Dataset | Alternative Dataset | Importance |
|---|---|---|---|
| DEM | LINZ LiDAR 1 m DEM | NZ 8 m DEM (LINZ), Copernicus GLO-30 | ★★★★★ |
| Land cover | LCDB | ESA WorldCover | ★★★★★ |
| Land use / irrigation | MfE land use and irrigated land | Regional council mapping | ★★★★☆ |
| LAI | MODIS MCD15A3H | Sentinel-2 derived LAI | ★★★★☆ |
| Precipitation | NIWA VCSN | CliFlo, regional councils, ERA5-Land | ★★★★★ |
| Climate forcing | NIWA VCSN | ERA5-Land | ★★★★★ |
| Potential ET | NIWA VCSN | CliFlo stations | ★★★★★ |
| Rivers | River Environment Classification (REC2) | LINZ Topo50 hydrography | ★★★★★ |
| Lakes / wetlands | FENZ (DOC) | LINZ Topo50, LCDB | ★★★★☆ |
| Soil | S-map | FSL / NZLRI | ★★★★★ |
| Hydrogeology | GNS Science geological maps and aquifer data | MfE aquifer boundaries | ★★★★★ |
| Groundwater heads | Regional councils (Section 22) | LAWA | ★★★★★ |
| Water takes | Regional council consent and metering data | MfE national summaries | ★★★★☆ |
| Streamflow calibration | Regional councils / NIWA hydrometric network | LAWA | ★★★★★ |
| Actual ET validation | MODIS MOD16 | SSEBop, eddy-covariance sites | ★★★☆☆ |
| Recharge validation | Regional council lysimeters | Groundwater age dating (GNS) | ★★★★☆ |
| Soil moisture validation | CliFlo soil moisture sites | SMAP | ★★★☆☆ |
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 |
|---|---|---|---|---|---|---|---|
| LINZ LiDAR DEM | Most of New Zealand | 1 m | GeoTIFF | Primary DEM | High accuracy, bare-earth, national programme | Survey dates vary by region; large volumes | ★★★★★ |
| NZ 8 m DEM (LINZ) | New Zealand | 8 m | GeoTIFF | Regional models and gap filling | Seamless national coverage | Derived from contours; less accurate on flat land | ★★★★☆ |
| OpenTopography NZ | LiDAR survey areas | 1 m / point cloud | LAZ / GeoTIFF | Custom DEM processing | Point clouds available | Processing required | ★★★★☆ |
| Copernicus GLO-30 | Global | 30 m | GeoTIFF | Backup DEM | Consistent coverage | Coarse for steep terrain | ★★☆☆☆ |
4.3 Typical Preprocessing¶
- reproject to NZTM2000 and check vertical datum (NZVD2016)
- clip to model domain plus buffer
- merge LiDAR survey tiles and fill gaps with the 8 m DEM
- condition channels and remove culvert and bridge artefacts
- resample to model grid
- compare drainage paths with REC2 streams
- smooth only where needed for numerical stability
4.4 Quality Checks¶
- confirm river channels follow topographic lows
- check braided river beds, which change after floods
- check stopbanks (levees) and drainage channels on lowland floodplains
- check peat areas for subsidence since the LiDAR survey date
- compare derived catchments with REC2 catchments
5. Surface Water¶
5.1 Rivers¶
| Dataset | Coverage | Format | MIKE SHE / MIKE 1D Use | Advantages | Limitations | Recommendation |
|---|---|---|---|---|---|---|
| River Environment Classification (REC2) | New Zealand | Vector GIS with topology and attributes | River network, catchments | National river network with classification and flow statistics | Requires simplification for hydraulic routing | ★★★★★ |
| LINZ Topo50 hydrography | New Zealand | Vector GIS | Rivers, lakes, drains | Official topographic mapping | Less topology than REC2 | ★★★★☆ |
| HydroRIVERS | Global | Vector GIS | Fallback | Global consistency | Too coarse for New Zealand | ★☆☆☆☆ |
5.2 Lakes and Reservoirs¶
| Dataset | Use | Recommendation |
|---|---|---|
| FENZ (Freshwater Ecosystems of New Zealand) | Lakes, rivers and wetlands with ecological attributes | ★★★★☆ |
| LINZ Topo50 | Lake polygons | ★★★★☆ |
| Hydropower operators and regional councils | Storage levels for hydro lakes | ★★★★☆ |
5.3 Wetlands and Springs¶
Potential sources:
- FENZ wetlands (DOC)
- LCDB wetland classes
- regional council wetland and spring mapping
- Sentinel-1 SAR and Sentinel-2
Wetland and spring data are useful for groundwater-dependent ecosystem studies, spring-fed stream baseflow, and surface storage parameterization.
5.4 Typical Preprocessing¶
- simplify river network
- remove minor branches not relevant at model scale
- identify losing and gaining reaches (especially braided rivers)
- align river network with DEM
- define cross-sections or approximate channel geometry
- define river-bed conductance
- include drains, stopbanks and hydro schemes where relevant
- assign river boundary conditions
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 |
|---|---|---|---|---|---|---|---|
| LCDB | New Zealand | ~1 ha minimum mapping unit | Vector | Primary land-cover zones | National standard with several epochs since 1996 | Does not separate dairy from sheep and beef pasture | ★★★★★ |
| MfE land use and irrigated land | New Zealand | Vector | Vector | Irrigation zones and land use | Identifies irrigated areas | Snapshot years only | ★★★★☆ |
| ESA WorldCover | Global | 10 m | Raster | Alternative land-cover map | High resolution | Generic global legend | ★★★☆☆ |
| Dynamic World | Global | 10 m | Cloud / Earth Engine | Recent land-cover dynamics | Near-real-time | Requires postprocessing | ★★★☆☆ |
6.3 Vegetation Datasets¶
| Parameter | Dataset | Use | Recommendation |
|---|---|---|---|
| LAI | MODIS MCD15A3H | Seasonal LAI time series | ★★★★☆ |
| NDVI | Sentinel-2 / Landsat | Pasture growth and crop seasonality | ★★★★☆ |
| Root depth | LCDB classes + literature | Root-depth assignment | ★★★☆☆ |
| Crop coefficient | FAO-56 | Pasture and crop ET parameterization | ★★★★☆ |
6.4 Typical Preprocessing¶
- reclassify LCDB classes into MIKE SHE vegetation zones
- overlay irrigated land maps to separate irrigated and dryland pasture
- separate exotic plantation forest, indigenous forest, scrub, tussock, and pasture
- consider harvest cycles in plantation forests for long simulations
- assign LAI curves or seasonal LAI maps
- assign roughness values for overland flow
7. Meteorological Forcing¶
7.1 Precipitation¶
| Dataset | Coverage | Resolution | Temporal Resolution | MIKE SHE Use | Advantages | Limitations | Recommendation |
|---|---|---|---|---|---|---|---|
| NIWA VCSN | New Zealand | ~5 km | Daily | Primary rainfall forcing | National standard, long record | Access and licence conditions; underestimates alpine rainfall | ★★★★★ |
| CliFlo | Station network | Point | Daily / hourly / sub-hourly | Station forcing and bias correction | Free, long records | Uneven coverage in mountains | ★★★★☆ |
| Regional council rain gauges | Regional | Point | Sub-hourly | Event forcing | Dense local networks | Different portals per council | ★★★★★ |
| ERA5-Land | Global | ~9 km | Hourly | Backup forcing | Free, hourly | Too coarse for orographic gradients | ★★☆☆☆ |
7.2 Climate Variables¶
| Variable | Recommended Dataset | Alternatives | MIKE SHE Use |
|---|---|---|---|
| Air temperature | NIWA VCSN | CliFlo, ERA5-Land | ET, snow/rain distinction, snowmelt |
| Wind speed | NIWA VCSN | CliFlo | Penman-Monteith / Shuttleworth-Wallace |
| Vapour pressure / humidity | NIWA VCSN | CliFlo | Vapour-pressure deficit |
| Solar radiation | NIWA VCSN | CliFlo, NASA POWER | ET energy term |
| Potential ET | NIWA VCSN (Penman, Priestley-Taylor) | CliFlo | PET forcing or validation |
7.3 Potential ET¶
| Dataset | Coverage | Resolution | Temporal Resolution | Use | Recommendation |
|---|---|---|---|---|---|
| NIWA VCSN | New Zealand | ~5 km | Daily | Distributed PET | ★★★★★ |
| CliFlo | Station locations | Point | Daily | Local PET time series | ★★★★☆ |
7.4 Snow and Glaciers¶
Snow and ice are important in the Southern Alps, the Kaikōura ranges, and on the central North Island volcanoes.
| Dataset | Use | Recommendation |
|---|---|---|
| NIWA Snow and Ice Network | Alpine snow observations | ★★★★☆ |
| NIWA end-of-summer snowline survey | Glacier mass-balance context | ★★★☆☆ |
| MODIS Snow Cover | Snow extent validation | ★★★★☆ |
8. Soil Data¶
8.1 Purpose in MIKE SHE¶
Soil data control:
- infiltration
- water retention
- evapotranspiration limitation
- recharge generation and nitrate leaching
- capillary rise
- soil-water storage
- runoff generation
8.2 Dataset Comparison¶
| Dataset | Coverage | Resolution | Parameters | MIKE SHE Use | Advantages | Limitations | Recommendation |
|---|---|---|---|---|---|---|---|
| S-map | Most productive land | 1:50,000 or finer | Functional horizons, Ksat, water retention, drainage class, profile available water | Primary UZ parameterization | Designed for water and nutrient modelling | Incomplete in hill and high country; licence terms apply | ★★★★★ |
| Fundamental Soil Layers (FSL) | New Zealand | 1:50,000 to 1:63,360 (NZLRI) | Drainage, profile available water, texture classes | Gap filling | National coverage | Class-based, less detailed | ★★★★☆ |
| NZLRI | New Zealand | 1:50,000 to 1:63,360 | Land units, rock type, slope | Soil and land context | National coverage | Old survey | ★★★☆☆ |
| SoilGrids | Global | 250 m | Global soil properties | Backup | Easy access | Poorly suited to volcanic and stony soils | ★★☆☆☆ |
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 stone content
8.4 Typical Preprocessing¶
- use S-map functional horizons as MIKE SHE unsaturated-zone layers
- fit van Genuchten parameters to S-map water retention values
- fill gaps with FSL classes
- pay special attention to stony, shallow soils on gravel plains (very high recharge)
- treat allophanic and pumice soils (volcanic) separately
- resample or rasterize to model grid
- check unrealistic Ks values
- calibrate sensitive parameters against lysimeter drainage, groundwater heads, and runoff
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 |
|---|---|---|---|---|---|
| GNS Science geological mapping (QMAP) | New Zealand | Geological framework | National 1:250,000 geology | Requires hydrogeological translation | ★★★★☆ |
| MfE aquifer boundaries | New Zealand | Aquifer extents | National overview | Generalized | ★★★★☆ |
| Regional council aquifer models and reports | Regional | Local aquifer geometry and properties | Most detailed information | Format and access vary | ★★★★★ |
| GLHYMPS | Global | Permeability screening | Useful fallback | Too generalized | ★☆☆☆☆ |
9.3 Conceptual Model Recommendations¶
For New Zealand, special attention should be paid to:
- highly permeable gravel aquifers with rapid recharge and short response times
- losing braided rivers as major recharge sources
- spring lines where groundwater re-emerges on lowland plains
- confined coastal gravel aquifers and seawater intrusion
- volcanic ignimbrite and pumice aquifers with long groundwater ages
- karst systems (e.g. Arthur Marble Aquifer)
- fault-controlled flow in tectonically active regions
- thin soils over fractured greywacke in hill country
10. Groundwater Data¶
10.1 Initial Heads and Monitoring Wells¶
| Dataset | Coverage | Use | Advantages | Limitations | Recommendation |
|---|---|---|---|---|---|
| Regional council well databases (Section 22) | Regional | Groundwater levels, bore logs | Most complete source | Different portals and formats | ★★★★★ |
| LAWA | New Zealand | Groundwater quantity and quality summaries | Nationally consistent overview | Summary level | ★★★★☆ |
| GNS National Groundwater Monitoring Programme | New Zealand | Long-term groundwater quality and age | Consistent national sites | Mainly water quality | ★★★☆☆ |
10.2 Water Takes and Pumping¶
| Dataset | Coverage | Use | Advantages | Limitations | Recommendation |
|---|---|---|---|---|---|
| Regional council consent databases | Regional | Consented takes, locations, rates | Detailed | Consented ≠ actual use | ★★★★☆ |
| Water metering data | Regional | Measured takes (telemetered for larger takes) | Actual use | Access via councils | ★★★★☆ |
| MfE | New Zealand | National water-take summaries | Consistent | Aggregated | ★★☆☆☆ |
10.3 Boundary Conditions¶
| Boundary Type | Source | Comment |
|---|---|---|
| Coastal boundary | Coastline and sea level | Important for confined coastal aquifers |
| River boundary | REC2, regional council flow data | Braided river losses need special care |
| Spring discharge | Regional council spring gauging | Drain boundaries in MIKE SHE |
| No-flow boundary | Mountain fronts, basement contacts | Must be justified conceptually |
| Pumping wells | Regional council consents | Major uncertainty in irrigated areas |
11. Water Management¶
11.1 Relevant Processes¶
Water management is often central in New Zealand models:
- irrigation (especially Canterbury, Otago, Hawke's Bay, Marlborough)
- groundwater and surface-water takes under allocation limits
- minimum flows and flow regimes
- hydropower schemes (e.g. Waitaki, Waikato, Clutha)
- land drainage and flood protection schemes
- managed aquifer recharge (e.g. Canterbury)
- nutrient limits and farm environment plans
11.2 Regulatory Framework¶
- freshwater is managed under the Resource Management Act 1991 (currently under reform)
- the National Policy Statement for Freshwater Management (NPS-FM) sets national direction, including limits and Te Mana o te Wai
- regional plans set allocation limits, minimum flows, and nutrient rules
- Water Conservation Orders protect selected water bodies (e.g. Te Waikoropupū Springs)
11.3 Dataset Sources¶
| Topic | Dataset / Agency | Use |
|---|---|---|
| Water takes | Regional councils | Consents and metered use |
| Irrigated areas | MfE irrigated land | Irrigation zones |
| Allocation limits | Regional plans | Scenarios and zonation |
| National environmental reporting | MfE / Stats NZ | Context and trends |
12. Remote Sensing Products¶
| Dataset | Coverage | Resolution | Use | Recommendation |
|---|---|---|---|---|
| MODIS MOD16 | Global | 500 m | Regional actual ET validation | ★★★☆☆ |
| SSEBop | Global | ~1 km | Actual ET validation | ★★★☆☆ |
| Sentinel-2 | Global | 10 m | Land cover, irrigation mapping, vegetation dynamics | ★★★★★ |
| Sentinel-1 SAR | Global | 10 m | Flood extent under cloud cover | ★★★★☆ |
| Landsat | Global | 30 m | Long-term land cover and ET support | ★★★★☆ |
| SMAP | Global | Coarse | Soil moisture (limited in steep terrain) | ★★☆☆☆ |
| MODIS Snow Cover | Global | 500 m | Snow extent | ★★★★☆ |
| ECOSTRESS | Selected coverage | ~70 m | Plant water stress | ★★☆☆☆ |
Frequent cloud cover limits optical remote sensing in many regions; SAR is often more reliable for flood mapping.
13. Calibration Datasets¶
13.1 Recommended Calibration Targets¶
| Target | Dataset | Use | Recommendation |
|---|---|---|---|
| River discharge | Regional councils / NIWA hydrometric network | Streamflow calibration | ★★★★★ |
| Spring-fed stream flows | Regional council gaugings | Baseflow and groundwater discharge | ★★★★★ |
| Groundwater heads | Regional council monitoring wells | Saturated-zone calibration | ★★★★★ |
| Drainage / recharge | Regional council lysimeters | Direct recharge validation | ★★★★★ |
| Groundwater age | GNS tritium and age-tracer data | Flow paths and residence times | ★★★★☆ |
| Actual ET | MODIS MOD16 / eddy-covariance sites | ET plausibility | ★★★☆☆ |
| Soil moisture | CliFlo / regional council sites | UZ validation | ★★★☆☆ |
| Snow | NIWA Snow and Ice Network / MODIS | Alpine catchments | ★★★☆☆ |
13.2 Recommended Calibration Strategy¶
A robust New Zealand MIKE SHE model should avoid calibration against only discharge. Recommended targets are:
- river discharge, including losing reaches of braided rivers
- spring-fed stream flows and baseflow
- groundwater heads in representative wells
- lysimeter drainage where available
- groundwater ages to constrain flow paths and lag times
- irrigation takes where relevant
14. Typical MIKE SHE Workflow¶
- Define modelling objective and domain.
- Download and preprocess the LINZ LiDAR DEM.
- Delineate catchments and surface drainage.
- Build river network from REC2.
- Prepare land cover from LCDB and irrigated land maps.
- Assign vegetation parameters from MODIS MCD15A3H and literature.
- Prepare precipitation from NIWA VCSN and regional council gauges.
- Prepare climate forcing and PET from NIWA VCSN.
- Prepare soil properties from S-map and FSL.
- Build hydrogeological layers from GNS mapping and regional council aquifer models.
- Import initial groundwater heads from regional council databases.
- Add consented and metered water takes.
- Couple rivers and groundwater, with particular care for braided rivers and springs.
- Calibrate discharge, spring flows, and groundwater heads.
- Validate recharge against lysimeters and groundwater ages.
- Document assumptions and uncertainties.
15. Minimum Dataset Package¶
For a simple screening model:
| Model Element | Dataset |
|---|---|
| DEM | NZ 8 m DEM or LiDAR DEM |
| Land cover | LCDB |
| Precipitation | NIWA VCSN |
| Climate forcing | NIWA VCSN |
| Potential ET | NIWA VCSN |
| Rivers | REC2 |
| Soils | S-map / FSL |
| Aquifers | MfE aquifer boundaries |
| Streamflow | Regional council / LAWA |
| Groundwater heads | Regional council |
16. Recommended Dataset Package¶
For a professional regional MIKE SHE model:
| Model Element | Dataset |
|---|---|
| DEM | LINZ LiDAR 1 m DEM |
| Sub-daily precipitation | Regional council gauges + CliFlo |
| Climate forcing | NIWA VCSN |
| Land cover | LCDB + Sentinel-2 checks |
| Irrigation | MfE irrigated land + regional council consents |
| Soils | S-map |
| Hydrogeology | Regional council aquifer models + GNS mapping |
| Groundwater heads | Regional council monitoring |
| Water takes | Regional council consents and metering |
| Recharge validation | Lysimeters + groundwater age data |
| Actual ET | MODIS MOD16 / SSEBop |
17. Premium Dataset Package¶
For high-quality consulting, regulatory, or research models, add:
| Dataset Type | Possible Source | Purpose |
|---|---|---|
| LiDAR point clouds and river bathymetry | LINZ / OpenTopography / regional councils | Channel and floodplain geometry |
| Rain radar | MetService / regional councils | Event-scale rainfall |
| Metered water-take records | Regional councils | Pumping stress refinement |
| Regional groundwater models | Regional councils / consultants | Aquifer layering and parameters |
| Pumping tests | Council records / consultant reports | Hydraulic conductivity and storage |
| Hydro scheme operations | Hydropower operators | Regulated river boundaries |
| Farm-scale soil and nutrient data | Farm environment plans / OVERSEER-type assessments | Nitrate leaching and recharge quality |
| Age-tracer data | GNS Science | Lag times and flow paths |
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 NZTM2000 and checked against NZVD2016
- [ ] DEM clipped
- [ ] LiDAR gaps filled
- [ ] drainage paths checked
Surface Water¶
- [ ] REC2 network downloaded
- [ ] river network simplified
- [ ] losing and gaining reaches identified
- [ ] springs identified
- [ ] hydro schemes and drains included
- [ ] boundary conditions assigned
Land Cover and Vegetation¶
- [ ] LCDB downloaded for simulation period
- [ ] classes reclassified
- [ ] irrigated areas defined
- [ ] forest harvest cycles considered
- [ ] LAI assigned
- [ ] rooting depths assigned
Weather¶
- [ ] VCSN access and licence confirmed
- [ ] precipitation downloaded
- [ ] regional council gauges added
- [ ] climate variables downloaded
- [ ] PET checked
- [ ] snow parameters defined where relevant
- [ ] model forcing files prepared
Soil¶
- [ ] S-map and FSL downloaded
- [ ] van Genuchten parameters fitted
- [ ] soil layers harmonized
- [ ] stony and volcanic soils checked
- [ ] unrealistic values checked
Groundwater¶
- [ ] aquifer boundaries defined
- [ ] regional council aquifer models requested
- [ ] initial heads interpolated
- [ ] water takes added
- [ ] boundary conditions defined
Calibration and Validation¶
- [ ] discharge gauges selected
- [ ] spring flows selected
- [ ] groundwater wells selected
- [ ] lysimeter data obtained where available
- [ ] groundwater age data obtained where available
- [ ] calibration and validation periods defined
20. References and Official Data Portals¶
- LINZ Data Service
- OpenTopography
- Manaaki Whenua – LRIS Portal
- S-map Online
- MfE Data Service
- Ministry for the Environment
- NIWA
- CliFlo
- GNS Science
- LAWA – Land Air Water Aotearoa
- Department of Conservation
- Stats NZ
- MODIS
- Sentinel Data Space
- Landsat
21. Notes on Uncertainty¶
Important uncertainties for New Zealand MIKE SHE models include:
- orographic precipitation gradients poorly captured by gauges and grids
- alpine precipitation and snowmelt
- braided river losses and river-bed conductance
- very high and variable conductivity of gravel aquifers
- soil hydraulic parameters for stony and volcanic soils
- irrigation timing and actual water use
- groundwater lag times for nitrate
- land-use change (dairy conversion, forestry harvest)
- changing river beds after floods
- limited satellite ET validation due to cloud cover and steep terrain
- 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. Regional Council Data Sources¶
In New Zealand, regional councils and unitary authorities hold most groundwater, streamflow, rainfall and water-take data. Most provide an environmental data portal, a well or bore database, and a consents search on their websites.
| Region | Council | Key Aquifers / Hydrological Focus |
|---|---|---|
| Northland | Northland Regional Council | Coastal sand and basalt aquifers, subtropical storms |
| Auckland | Auckland Council | Volcanic field basalt aquifers, urban stormwater |
| Waikato | Waikato Regional Council | Lake Taupō, Waikato River hydro, peat lowlands |
| Bay of Plenty | Bay of Plenty Regional Council | Rotorua lakes, ignimbrite aquifers |
| Gisborne | Gisborne District Council | Poverty Bay flats aquifers, erodible hill country |
| Hawke's Bay | Hawke's Bay Regional Council | Heretaunga Plains and Ruataniwha aquifers |
| Taranaki | Taranaki Regional Council | Volcanic ring plain, dairy |
| Manawatū-Whanganui | Horizons Regional Council | Manawatū plains, dairy nutrient management |
| Wellington | Greater Wellington Regional Council | Waiwhetū Artesian Aquifer, Wairarapa aquifers |
| Tasman | Tasman District Council | Waimea Plains, Arthur Marble Aquifer, Te Waikoropupū Springs |
| Nelson | Nelson City Council | Urban catchments |
| Marlborough | Marlborough District Council | Wairau Aquifer, viticulture irrigation |
| West Coast | West Coast Regional Council | Extreme rainfall, flood hazard |
| Canterbury | Environment Canterbury | Canterbury Plains gravel aquifers, braided rivers, lysimeters |
| Otago | Otago Regional Council | Central Otago basins, irrigation |
| Southland | Environment Southland | Alluvial aquifers, dairy nutrient management |