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<resTitle Sync="FALSE">IE GSI GSNI Geochemistry Deeper Topsoil ‘S’ Average Inductively Coupled Plasma aqua regia (ICPar) 4 km2 Ireland (ROI/NI) ITM</resTitle>
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<idPurp>Topsoil is the upper surface layer of the soil. This data shows the type and the amount of chemicals in topsoil across the northern half of Ireland. The chemicals in the soil can be natural or made by humans. The data also tells us how much organic carbon is in the soil and the pH of the soil. Testing these soils helps us learn about where they came from or how they were made. This data allows us to map both the changing values of these chemicals and soil types across the country.
Knowing about the chemistry of soils is important for many people and industries. This data will help in land-use planning, mapping of natural resources, help to understand the impact of farming on the environment, and aid policy. Higher amounts of some chemicals in soils may also affect human and livestock health.
Farmers need to know the chemistry of their soils to understand the quality and fertility of the soils. This helps them decide if they should use fertilisers or not. This can improve the health of their animals and quality of their crops. Soils can affect the quality of drinking water. If the quality of water is affected, it may need to be treated before people or animals can drink it. The chemistry of soils can also help people looking for minerals. Minerals are materials taken from the ground used for things we need from mobile phones to the stones used to build roads and houses.</idPurp>
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<statement>Soil samples for the northern half of the island of Ireland were collected by Geological Survey of Northern Ireland (GSNI) (2004-2006) and Geological Survey Ireland (GSI) (2011-2019) and tested for the chemicals that make up the soil. Almost 16,800 samples were taken from undisturbed and un-forested land where possible. The samples were sent to a lab to be tested for chemicals and the results were given as mg/kg (milligram per kilogram) or % (percent). An area of almost 49,800 km2 or approximately 50% of country was surveyed. Samples for the different surveys were taken at different resolutions:
• GSNI | Tellus Northern Ireland: 6,862 regional sites were sampled by the GSNI, an average of one site per 2 km2.
• GSI | Tellus Border (G1), Tellus West (G3) and North-Midlands (G5): 9,218 regional sites were sampled by the GSI, one site per 4 km2.
• GSI | Dublin and Galway Peri-urban (G6): 703 peri-urban samples were taken in the Dublin and Galway areas, one site per 1 km2.
Sampling methodology, sample preparation, analysis and quality control measures are fully described in Young and Donald (2013), Knights et al. (2020) and Szpak et al. (2020). All data are freely available from GSNI (www2.bgs.ac.uk/gsni/tellus/data_licensing/index.html) and GSI (https://www.gsi.ie/en-ie/programmes-and-projects/tellus/Pages/Data-and-Maps.aspx).
Sample Collection and Preparation:
i) Geological Survey of Northern Ireland (GSNI):
Note: The following text has been taken from Smyth and Johnston (2013) and Young and Donald (2013). For further details, please refer to these publications and the references therein.
In rural areas, samples were collected from alternate 1 km Irish national grid squares. Site selection within each square was random, subject to the avoidance wherever possible of roads, tracks, railways, human habitation and other disturbed ground. At each site two composite samples of five auger flights were collected, each composite sample comprising approximately 750 g of unsieved material. Samples were collected using a hand auger with a 20 by 5 cm flight from a standard depth interval of 5–20 cm for designated ‘A’ samples, referred to subsequently as ‘surface soils’, and at 35–50 cm for designated ‘S’ samples (nominally the B horizon), referred to subsequently as ‘deep soils’. Some 6,862 regional soil sites were sampled (see supplementary map - soil locations) and analysed, resulting in an average regional sampling density of 1 site per 2 km2. Observations of soil colour, depth, clast lithology and abundance were recorded at site. The samples were classified into five textural groups (sand, sand-silt, silt, silt-clay and clay).
At each soil sample site, information on the location, site and catchment geology, contamination, land use, and other features required for data interpretation were entered onto field cards. The sample location was also plotted on a field copy of the 1:50 000 Ordnance Survey of Northern Ireland (OSNI) map. Observations from field cards were entered into a digital Access2000™ database after undergoing a field quality control process. This involved checking that the correct codes had been recorded on field cards and that GPS coordinates recorded on the card matched those in the GPS unit for each site. Thus, both a traditional paper archive of observations was maintained as well as the construction of a computerised database. Soils were initially air-dried at the field-base prior to transport to the sample store where they were dried in a temperature controlled oven at 30°C for 2–3 days. At the end of each field campaign samples were checked against field sheets prior to packing for transport to the BGS laboratory for sample preparation. On arrival at the laboratory samples were checked against shipping lists prior to assigning laboratory batch numbers in the BGS UKAS Quality Assurance System. The A and S soils were prepared in the same manner in a trace-level sample preparation laboratory.
Samples were disaggregated prior to sieving to a &lt;2 mm fraction using nylon mesh. Replicate samples were prepared by riffle splitting each of the duplicate samples. Soil pH and LOI was determined for every A surface soil sample. A representative 30 g (± 2 g) sub-sample was obtained by cone and quartering. This sub-sample was then milled in an agate ball mill at 300 rpm for 30 minutes. ii) Geological Survey Ireland (GSI):
Two soil samples were taken at each site using an auger, a shallow topsoil from a depth interval of 5–20 cm (designated ‘A soil) and a deeper topsoil from 35–50 cm (designated ‘S’). Samples were placed in Kraft paper bags and briefly stored in warming cabinets at 30°C, packaged into Euro stacking crates and sent to a sample preparation facility.
Sample preparation involved drying, disaggregation with mortar and pestle and micronized with agate ball mill. Prepared samples were packaged and sent for laboratory analyses to external laboratories. Soil samples were analyzed by X-Ray Fluorescence Spectroscopy (XRFS), Inductively Coupled Plasma - Optical Emission Spectroscopy and Mass Spectroscopy (ICP-OES/MS) following aqua regia digestion (ICPar), loss on ignition at 450°C and pH by CaCl2 slurry, respectively.
Results of each analysis were imported to a MS Access database and evaluated for quality through various standard quality assurance measures such as duplicate-replicate analysis, blind and in-house certified reference material monitoring, blanks analysis as well as evaluation of standard statistical descriptors performed on each of the above. Various graphic outputs were created with bespoke visualization program created in R. Data was exported to ArcGIS and plotted to evaluate spatial patterns and corroborate statistical summaries with observed element and properties distributions
Samples were collected using third party sampling teams trained by GSI. Analyses by XRFS were conducted by Malvern Panalytical Ltd. (Nottingham, UK). ICPar, pH and loss on ignition tests were carried out by SGS Minerals Services (Toronto, Canada) for the samples from the G1 area (‘A’ soils only) and ALS Minerals Ltd. (‘OMAC’ Loughrea, Ireland) for the G3, G5 and G6 survey areas.
The data are recorded in Irish National Grid and WGS84 co-ordinates. Data quality (QC) was monitored by means of duplicate/replicate sample analysis, certified reference materials and blank analysis. For further details, please refer to Knights et al. (2020) and Spzak et al. (2020). Data compilation:
The compiled published datasets include:
1) ‘A’ Soils: 5-20 cm
a) ICPar:
GSNI | Regional_Soils_A_AquaRegia_HDL*
GSI | 58xxxxA-65xxxxA_Shallow_Topsoil_Download_v1.1; 6117xxA-6174xxA_Shallow_Topsoil_Download_v1.0
Total number of sample points = 16793
Total 4 km2 grid squares = 12800
Total number of elements = 44
*Hg values from “Regional_Soils_A_AquaRegia_HDL” (554942A to 555019A) were corrected.
b) pH &amp; LOI:
GSNI | Regional_Soils_A_XRF
GSI | 58xxxxA-65xxxxA_Shallow_Topsoil_Download_v1.1; 6117xxA-6174xxA_Shallow_Topsoil_Download_v1.0
Total number of sample points = 16793
Total 4 km2 grid squares = 12800
c) XRFS:
GSNI | Regional_Soils_A_XRF**
GSI | 58xxxxA-65xxxxA_Shallow_Topsoil_Download_v1.1
Total number of sample points = 12505
Total 4 km2 grid squares = 8524
Total number of elements = 53
**The GSNI Ge XRFS data has been corrected (based on instrument performance, followed by CRM performance), whereas the GSI data has not. Therefore, the GSNI Ge data has not been included in the merged ‘A’ XRFS dataset.
2) ‘S’ Soils: 35-50 cm
a) ICPar:
GSNI | Regional_Soils_S_AquaRegia_HDL
GSI | 58xxxxS-65xxxxS_Deeper_Topsoil_Download_v2_1; 6117xxS-6174xxS_Deeper_Topsoil_Download
Total number of sample points = 16787
Total 4 km2 grid squares = 12798
Total number of elements = 44
b) pH &amp; LOI:
GSI | 58xxxxS-65xxxxS_Deeper_Topsoil_Download_v2_1; 6117xxS-6174xxS_Deeper_Topsoil_Download
Total number of sample points = 9920
Total 4 km2 grid squares = 9399
c) XRFS:
GSNI | Regional_Soils_A_XRF
GSI | 58xxxxS-65xxxxS_Deeper_Topsoil_Download_v2_1
Total number of sample points = 5642
Total 4 km2 grid squares = 5123
Total number of elements = 52
The data was loaded into a GIS (ArcGIS Pro) as point data and reprojected from TM65 / Irish Grid (EPSG:29902) into IRENET95 / Irish Transverse Mercator (EPSG:2157). The greater density of soil samples in Northern Ireland (2 samples per 2 km2) and the Dublin and Galway periurban areas (4 samples per 4 km2), can lead to skewing of the statistics on which the map classes are based, affecting the distribution of values for some elements across the region. In order to create a more even and representative spread of sample points, for these areas the average concentration value was calculated for each 4 km2 grid cell, so that the classified maps are based on the same 1 per 4 km2 sample density across the entire region. This is a vector dataset. Vector data portray the world using points, lines, and polygons (areas). The data is displayed as 4 km2 grid squares (polygons) that contain the averaged soil geochemistry per grid square. These grids extend from the south-western Irish Grid origin and cover the island of Ireland. This all-Ireland grid dataset was used to plan both the GSNI and GSI surveys. Those grids that intersect the GSNI and GSI sample points were extracted (up to 12,800 grids) and reprojected into IRENET95 / Irish Transverse Mercator (EPSG:2157). Note, some grids that spanned the border intersect sample points from both the GSNI and GSI surveys. Therefore, the averaging the GSNI and GSI geochemistry data per 4 km2 grid square was done in a two-step process:
i) The mean value per grid cell of intersecting sample points from the GSNI data was calculated. This data was appended to the grid cells, then data was extracted as an attributed centroid point dataset.
ii) The mean GSNI centroid point dataset was merged with the GSI sample point dataset (regional and peri-urban samples). The mean value of intersecting samples and/or GSNI centroid points were appended to that grid cell.
Percentiles for the averaged dataset were calculated using R (R Core Team, 2022), RStudio (RStudio Team, 2022) and the NADA package (Lee, 2020). Lower limits of detection (LLD) are different between the laboratories and surveys. Therefore, to allow accurate comparison of geochemical values, working LLD values were determined based on the higher of the LLDs used. These LLDs are listed in the “Fields” section of the metadata below. The averaged data per grid polygons were classified using these percentiles, with average values below reported LLDs listed as “Less than LLD”. Note, the GSNI data have been conditioned, whereas only the GSI XRF data for K2O, Co, Cu, V &amp; Yb have had correction factors applied. No other GSI data has been conditioned. Apart from the conditioning described, no other levelling of the data collected over different years or analysed by different laboratories has been undertaken. The lack of levelling means that discernible survey boundary effects may be observed for some elements but, in general, the maps provide a good regional-scale representation of geochemical variation in the northern half of Ireland, having regard to the limits of the analytical method. References:
Browne, M. A. and Gallagher, V. (2020) ‘Tellus geochemical survey: shallow topsoil multielement maps for the northern half of Ireland’, Geological Survey Ireland. Available at: https://gsi.geodata.gov.ie/downloads/Geochemistry/Reports/Tellus_A_geochemistry_soils_ICPar_50percent_map_booklet.pdf
Browne, M. A., Szpak, M. and Gallagher, V. (2021) ‘Tellus Geochemical Survey: deeper topsoil multi-element maps for the northern half of Ireland’, Geological Survey Ireland. Available at: https://gsi.geodata.gov.ie/downloads/Geochemistry/Reports/Tellus_S_Geochemistry_Soils_ICPar_50percent_Map_Booklet.pdf
Knights, K. V., Szpak, M., Mather, J. and Collins, L. (2020) ‘Tellus geochemical survey: shallow topsoil data from the border and west of Ireland’, Geological Survey Ireland. Available at: https://gsi.geodata.gov.ie/downloads/Geochemistry/Reports/Tellus_A_geochemistry_data_report_2020_v1.0.pdf
Knights, K. V., Szpak, M., Gallagher, V., Mather, J. and Collins, L. (2021) ‘Tellus geochemical survey: deeper topsoil data from outer Dublin the border, north, and west of Ireland’, Geological Survey Ireland. Available at: https://gsi.geodata.gov.ie/downloads/Geochemistry/Reports/GSI_Tellus_Geochemistry_G1_G3_G6_S_QC_Report.pdf
Lee, L. (2020) ‘NADA: Nondetects and Data Analysis for Environmental Data’, R package version 1.6-1.1. Available at: https://CRAN.R-project.org/package=NADA
R Core Team (2022) ‘R: A language and environment for statistical computing. R Foundation for Statistical Computing’, Vienna, Austria. Available at: https://www.R-project.org/.
RStudio Team (2022) ‘RStudio: Integrated Development for R’, RStudio, PBC, Boston, MA Available at: http://www.rstudio.com/.
Smyth, D. and Johnston, C. (2013) ‘Geochemistry: Methodology’, in Young, M. E. and Donald, A. W. (eds.), A guide to the Tellus data. Belfast: Geological Survey of Northern Ireland. Available at: https://resources.bgs.ac.uk/gsni/geochemistry/TellusMethodologyAndDetectionLimits.pdf
Szpak, M. T., Gallagher, V., Mather, J. and Knights, K. V. (2020) ‘Tellus geochemical survey: shallow topsoil data from the midlands of Ireland’, Geological Survey Ireland. Available at: https://gsi.geodata.gov.ie/downloads/Geochemistry/Reports/Tellus_A_geochemistry_data_report_2020_midlands_infill_v1.0.pdf
Szpak, M. T., Gallagher, V., Mather, J. and Knights, K. V. (2021) ‘Tellus Geochemical Survey: Deeper topsoil data from the midlands of Ireland’, Geological Survey Ireland. Available at: https://gsi.geodata.gov.ie/downloads/Geochemistry/Reports/GSI_Tellus_Geochemistry_G5_S_QC_Report.pdf
Young, M. E. and Donald, A. W. (eds). (2013) ‘A guide to the Tellus data’, Belfast: Geological Survey of Northern Ireland. Available at: https://nora.nerc.ac.uk/id/eprint/509171/
In 2024, metadata was updated to the new GSI standard based on INSPIRE and ISO 19115-3 standards. Plain English is used for the Abstract and Description.</statement>
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<attrdef>Internal feature number.</attrdef>
<attrdefs>Esri</attrdefs>
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<udom>Sequential unique whole numbers that are automatically generated.</udom>
</attrdomv>
<attrlabl Sync="TRUE">OBJECTID</attrlabl>
<attalias Sync="TRUE">OBJECTID</attalias>
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<attwidth Sync="TRUE">4</attwidth>
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<atprecis Sync="TRUE">0</atprecis>
<attscale Sync="TRUE">0</attscale>
<attrdef>Unique ID for averaged 'S' soil data per 4 km2 grid square</attrdef>
<attrdefs>GSI</attrdefs>
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<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Silver (Ag) mg kg-1.
LLD = 0.01</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Silver (Ag) mg kg-1.
LLD = 0.01</udom>
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<attalias Sync="TRUE">Av Al (%)</attalias>
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<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Aluminium (Al) weight %. LLD = 0.01</attrdef>
<attrdefs>GSI</attrdefs>
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<udom>Average Aluminium (Al) weight %. LLD = 0.01</udom>
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<attalias Sync="TRUE">Av As (mg/kg)</attalias>
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<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">11</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Arsenic (As) mg kg-1.
LLD = 0.1</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Arsenic (As) mg kg-1.
LLD = 0.1</udom>
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<attrlabl Sync="TRUE">AV_BA_MGKG</attrlabl>
<attalias Sync="TRUE">Av Ba (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">12</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Barium (Ba) mg kg-1.
LLD = 5</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Barium (Ba) mg kg-1.
LLD = 5</udom>
</attrdomv>
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<attrlabl Sync="TRUE">AV_BE_MGKG</attrlabl>
<attalias Sync="TRUE">Av Be (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Beryllium (Be) mg kg-1.
LLD = 0.1</attrdef>
<attrdefs>GSI</attrdefs>
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<udom>Average Beryllium (Be) mg kg-1.
LLD = 0.1</udom>
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<attr>
<attrlabl Sync="TRUE">AV_BI_MGKG</attrlabl>
<attalias Sync="TRUE">Av Bi (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Bismuth (Bi) mg kg-1.
LLD = 0.02</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Bismuth (Bi) mg kg-1.
LLD = 0.02</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_CA_PCT</attrlabl>
<attalias Sync="TRUE">Av Ca (%)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Calcium (Ca) weight %.
LLD = 0.01</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Calcium (Ca) weight %.
LLD = 0.01</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_CD_MGKG</attrlabl>
<attalias Sync="TRUE">Av Cd (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Cadmium (Cd) mg kg-1.
LLD = 0.01</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Cadmium (Cd) mg kg-1.
LLD = 0.01</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_CE_MGKG</attrlabl>
<attalias Sync="TRUE">Av Ce (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">11</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Cerium (Ce) mg kg-1.
LLD = 0.05</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Cerium (Ce) mg kg-1.
LLD = 0.05</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_CO_MGKG</attrlabl>
<attalias Sync="TRUE">Av Co (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">11</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Cobalt (Co) mg kg-1.
LLD = 0.1</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Cobalt (Co) mg kg-1.
LLD = 0.1</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_CR_MGKG</attrlabl>
<attalias Sync="TRUE">Av Cr (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">12</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Chromium (Cr) mg kg-1.
LLD = 1</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Chromium (Cr) mg kg-1.
LLD = 1</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_CS_MGKG</attrlabl>
<attalias Sync="TRUE">Av Cs (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Caesium (Cs) mg kg-1.
LLD = 0.05</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Caesium (Cs) mg kg-1.
LLD = 0.05</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_CU_MGKG</attrlabl>
<attalias Sync="TRUE">Av Cu (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">11</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Copper (Cu) mg kg-1.
LLD = 0.5</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Copper (Cu) mg kg-1.
LLD = 0.5</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_FE_PCT</attrlabl>
<attalias Sync="TRUE">Av Fe (%)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Iron (Fe) weight %.
LLD = 0.01</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Iron (Fe) weight %.
LLD = 0.01</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_GA_MGKG</attrlabl>
<attalias Sync="TRUE">Av Ga (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">11</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Gallium (Ga) mg kg-1.
LLD = 0.1</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Gallium (Ga) mg kg-1.
LLD = 0.1</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_HF_MGKG</attrlabl>
<attalias Sync="TRUE">Av Hf (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Hafnium (Hf) mg kg-1.
LLD = 0.05</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Hafnium (Hf) mg kg-1.
LLD = 0.05</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_HG_MGKG</attrlabl>
<attalias Sync="TRUE">Av Hg (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Mercury (Hg) mg kg-1.
LLD = 0.01</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Mercury (Hg) mg kg-1.
LLD = 0.01</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_IN_MGKG</attrlabl>
<attalias Sync="TRUE">Av In (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Indium (In) mg kg-1.
LLD = 0.02</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Indium (In) mg kg-1.
LLD = 0.02</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_K_PCT</attrlabl>
<attalias Sync="TRUE">Av K (%)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Potassium (K) weight %. LLD = 0.01</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Potassium (K) weight %. LLD = 0.01</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_LA_MGKG</attrlabl>
<attalias Sync="TRUE">Av La (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">11</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Lanthanum (La) mg kg-1.
LLD = 0.1</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Lanthanum (La) mg kg-1.
LLD = 0.1</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_LI_MGKG</attrlabl>
<attalias Sync="TRUE">Av Li (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">11</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Lithium (Li) mg kg-1.
LLD = 1</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Lithium (Li) mg kg-1.
LLD = 1</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_MG_PCT</attrlabl>
<attalias Sync="TRUE">Av Mg (%)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Magnesium (Mg) mg kg-1.
LLD = 0.01</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Magnesium (Mg) mg kg-1.
LLD = 0.01</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_MN_MGKG</attrlabl>
<attalias Sync="TRUE">Av Mn (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">13</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Manganese (Mn) mg kg-1.
LLD = 2</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Manganese (Mn) mg kg-1.
LLD = 2</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_MO_MGKG</attrlabl>
<attalias Sync="TRUE">Av Mo (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Molybdenum (Mo) mg kg-1.
LLD = 0.05</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Molybdenum (Mo) mg kg-1.
LLD = 0.05</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_NA_PCT</attrlabl>
<attalias Sync="TRUE">Av Na (%)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Sodium (Na) weight % .
LLD = 0.01</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Sodium (Na) weight % .
LLD = 0.01</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_NB_MGKG</attrlabl>
<attalias Sync="TRUE">Av Nb (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Niobium (Nb) mg kg-1.
LLD = 0.05</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Niobium (Nb) mg kg-1.
LLD = 0.05</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_NI_MGKG</attrlabl>
<attalias Sync="TRUE">Av Ni (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">12</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Nickel (Ni) mg kg-1.
LLD = 0.5</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Nickel (Ni) mg kg-1.
LLD = 0.5</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_P_MGKG</attrlabl>
<attalias Sync="TRUE">Av P (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">13</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Phosphorus (P) mg kg-1.
LLD = 50</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Phosphorus (P) mg kg-1.
LLD = 50</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_PB_MGKG</attrlabl>
<attalias Sync="TRUE">Av Pb (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">11</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Lead (Pb) mg kg-1.
LLD = 0.2</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Lead (Pb) mg kg-1.
LLD = 0.2</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_RB_MGKG</attrlabl>
<attalias Sync="TRUE">Av Rb (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">11</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Rubidium (Rb) mg kg-1. LLD = 0.2</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Rubidium (Rb) mg kg-1. LLD = 0.2</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_S_PCT</attrlabl>
<attalias Sync="TRUE">Av S (%)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Sulphur (S) weight %.
LLD = 0.01</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Sulphur (S) weight %.
LLD = 0.01</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_SB_MGKG</attrlabl>
<attalias Sync="TRUE">Av Sb (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Antimony (Sb) mg kg-1. LLD = 0.05</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Antimony (Sb) mg kg-1. LLD = 0.05</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_SC_MGKG</attrlabl>
<attalias Sync="TRUE">Av Sc (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">11</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Scandium (Sc) mg kg-1.
LLD = 0.1</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Scandium (Sc) mg kg-1.
LLD = 0.1</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_SE_MGKG</attrlabl>
<attalias Sync="TRUE">Av Se (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Selenium (Se) mg kg-1.
LLD = 1</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Selenium (Se) mg kg-1.
LLD = 1</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_SN_MGKG</attrlabl>
<attalias Sync="TRUE">Av Sn (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Tin (Sn) mg kg-1.
LLD = 0.3</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Tin (Sn) mg kg-1.
LLD = 0.3</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_SR_MGKG</attrlabl>
<attalias Sync="TRUE">Av Sr (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">12</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Strontium (Sr) mg kg-1.
LLD = 0.5</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Strontium (Sr) mg kg-1.
LLD = 0.5</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_TH_MGKG</attrlabl>
<attalias Sync="TRUE">Av Th (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">11</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Thorium (Th) mg kg-1.
LLD = 0.1</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Thorium (Th) mg kg-1.
LLD = 0.1</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_TL_MGKG</attrlabl>
<attalias Sync="TRUE">Av Tl (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Thallium (Tl) mg kg-1.
LLD = 0.02</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Thallium (Tl) mg kg-1.
LLD = 0.02</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_U_MGKG</attrlabl>
<attalias Sync="TRUE">Av U (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Uranium (U) mg kg-1.
LLD = 0.05</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Uranium (U) mg kg-1.
LLD = 0.05</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_V_MGKG</attrlabl>
<attalias Sync="TRUE">Av V (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">12</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Vanadium (V) mg kg-1.
LLD = 1</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Vanadium (V) mg kg-1.
LLD = 1</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_W_MGKG</attrlabl>
<attalias Sync="TRUE">Av W (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">10</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Tungsten (W) mg kg-1.
LLD = 0.1</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Tungsten (W) mg kg-1.
LLD = 0.1</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_Y_MGKG</attrlabl>
<attalias Sync="TRUE">Av Y (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">11</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Yttrium (Y) mg kg-1.
LLD = 0.05</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Yttrium (Y) mg kg-1.
LLD = 0.05</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_ZN_MGKG</attrlabl>
<attalias Sync="TRUE">Av Zn (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">12</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Zinc (Zn) mg kg-1.
LLD = 1</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Zinc (Zn) mg kg-1.
LLD = 1</udom>
</attrdomv>
</attr>
<attr>
<attrlabl Sync="TRUE">AV_ZR_MGKG</attrlabl>
<attalias Sync="TRUE">Av Zr (mg/kg)</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">11</atprecis>
<attscale Sync="TRUE">6</attscale>
<attrdef>Average Zirconium (Zr) mg kg-1.
LLD = 0.5</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Average Zirconium (Zr) mg kg-1.
LLD = 0.5</udom>
</attrdomv>
</attr>
<attr>
<attrdef>Number of intersecting sample points</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Number of intersecting sample points</udom>
</attrdomv>
<attrlabl Sync="TRUE">JOIN_COUNT</attrlabl>
<attalias Sync="TRUE">Samples per Grid</attalias>
<attrtype Sync="TRUE">Integer</attrtype>
<attwidth Sync="TRUE">4</attwidth>
<atprecis Sync="TRUE">5</atprecis>
<attscale Sync="TRUE">0</attscale>
</attr>
<attr>
<attrdef>Grid ID</attrdef>
<attrdefs>GSI</attrdefs>
<attrdomv>
<udom>Grid ID</udom>
</attrdomv>
<attrlabl Sync="TRUE">GRID_ID</attrlabl>
<attalias Sync="TRUE">Grid ID</attalias>
<attrtype Sync="TRUE">String</attrtype>
<attwidth Sync="TRUE">10</attwidth>
<atprecis Sync="TRUE">0</atprecis>
<attscale Sync="TRUE">0</attscale>
</attr>
<attr>
<attrdef>ESRI Global ID</attrdef>
<attrdefs>Esri</attrdefs>
<attrdomv>
<udom>ESRI Global ID</udom>
</attrdomv>
<attrlabl Sync="TRUE">GLOBALID</attrlabl>
<attalias Sync="TRUE">GlobalID</attalias>
<attrtype Sync="TRUE">GlobalID</attrtype>
<attwidth Sync="TRUE">38</attwidth>
<atprecis Sync="TRUE">0</atprecis>
<attscale Sync="TRUE">0</attscale>
</attr>
<attr>
<attrdef>Feature geometry.</attrdef>
<attrdefs>Esri</attrdefs>
<attrdomv>
<udom>Coordinates defining the features.</udom>
</attrdomv>
<attrlabl Sync="TRUE">SHAPE</attrlabl>
<attalias Sync="TRUE">SHAPE</attalias>
<attrtype Sync="TRUE">Geometry</attrtype>
<attwidth Sync="TRUE">8</attwidth>
<atprecis Sync="TRUE">0</atprecis>
<attscale Sync="TRUE">0</attscale>
</attr>
<attr>
<attrlabl Sync="TRUE">SHAPE.AREA</attrlabl>
<attalias Sync="TRUE">SHAPE.AREA</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">0</attwidth>
<atprecis Sync="TRUE">0</atprecis>
<attscale Sync="TRUE">0</attscale>
</attr>
<attr>
<attrlabl Sync="TRUE">SHAPE.LEN</attrlabl>
<attalias Sync="TRUE">SHAPE.LEN</attalias>
<attrtype Sync="TRUE">Double</attrtype>
<attwidth Sync="TRUE">0</attwidth>
<atprecis Sync="TRUE">0</atprecis>
<attscale Sync="TRUE">0</attscale>
</attr>
</detailed>
</eainfo>
<spdoinfo>
<ptvctinf>
<esriterm Name="IE_GSI_GSNI_Geochemistry_Deeper_Topsoil_S_Grid_Av_ICPar_4km2_IE32_ITM">
<efeatyp Sync="TRUE">Simple</efeatyp>
<efeageom Sync="TRUE" code="4"/>
<esritopo Sync="TRUE">FALSE</esritopo>
<efeacnt Sync="TRUE">12798</efeacnt>
<spindex Sync="TRUE">TRUE</spindex>
<linrefer Sync="TRUE">FALSE</linrefer>
</esriterm>
</ptvctinf>
</spdoinfo>
</metadata>
