Cereal silage, dryland, Dawson {AU-QLD}| cereal silage production | AusLCI, U
Unit process v00.00.000
This dataset represents the production of 1 kg of cereal silage. The yield is 17778 t/ha. Documentation for this dataset can be found in the 'LCAgMetrics Methodology for developing Life Cycle Inventory' report, available at https://agrifutures.com.au/. (Hume, I., Renouf, M.A., Eady, S.J., Grant, T., 2025). It was developed as part of the LCAgMetrics project, a partnership between Agrifutures Australia and Lifecycles, funded by the Australian Government’s Sustainability Reporting Uplift Grant as part of the National Agriculture Traceability Grants Program. Production Volume: 33215 t/yr. Activities included: This activity starts after the harvest of the previous crop. Activities included are: the inputs of seeds, mineral fertilisers, pesticides and irrigation water, all machine operations and corresponding machine infrastructure and sheds. It is assumed that no organic fertilisers are applied. Machine operations are: soil cultivation, sowing, fertilisation, irrigation, weed control, pest and pathogen control, combine-harvest, and drying of grains. Direct field emissions are included. The activity ends after harvest and baling of hay / silage at farm gate. Energy values: 17.8MJ/kg (gross). Nutritional values: Protein: 8%. Carbohydrate: 0%. Fat: 18%. Geography: Dawson Callide, QLD, AU. Technology level: Represents current practices as per gross margins reports (AgMargins 2024 & SA Gross Margin Guide 2022). Time period: 2017-2021. Record: Data entry by: Isobel Hume; Tel: +61(0)3 9417 1190; E-mail: office@lifecycles.com.au; Company: Life Cycle Strategies; Country: AU Generator: Data entry by: Isobel Hume; Tel: +61(0)3 9417 1190; E-mail: office@lifecycles.com.au; Company: Life Cycle Strategies; Country: AU
- Sector
- Material
- Contributor
- —
- Last updated
- 30 May 2025
- Reference ID
87d72198-0f9f-3ce9-a402-2f2b7d414f9b
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Documentation
- Quantitative reference
- Cereal silage, dryland, Dawson {AU-QLD}| cereal silage production | AusLCI, U
- Sampling procedure
- Secondray data compiled from publicly available resources. Validated by expert knowledge to represent typical representative practices and inputs.
- Creation date
- 30 May 2025
- Is copyright protected
- No
- Is infrastructure process
- No
- Tags
- material
- Sources
-
Soil and Landscape Grid of Australia/2014/CSIRO
Soil loss by water erosion in Australia/2016/ Teng, H. et.al.
NIR 2023 (DCCEEW, 2025)/2024/Commonwealth of Australia
AgMargins reports/2021/Queensland Government
Environment Australia, 1999
Farm Business Planning Tools/2025/Tasmanian Government
Farm Gross Margin Guide/2024/SAGIT
Land Management and Farming in Australia, 2016-17/2018/ABS
Maintenance Lime Rate Calculator/2016/GRDC
SILO climate data/2024/Queensland Government
TraNSIT-Supply Chain Transport and Logistics Dashboard/2025/Australian Gov
Product outputs
| Flow | Amount | Unit | Comment |
|---|---|---|---|
| Cereal silage, dryland, Dawson {AU-QLD}| cereal silage production | AusLCI, U | 17720.0 | kg | — |
Technical inputs
| Flow | Amount | Unit | Comment |
|---|---|---|---|
| Carbon correction factor {AU}| | AusLCI, U | 0.0 | kg | (2,3,3,1,1,na) - 1.05 Uncertainty. Carbon correction factor in kgCO2eq. Calculated to ensure the carbon balance is maintained after allocation. Source: Land Management and Farming in Australia, 2016-17/2018/ABS |
| Cultivating, broadacre crop, controlled traffic {AU}| | AusLCI, U | 0.0 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for contolled traffic cultivation. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Cultivating, broadacre crop, conventional {AU}| | AusLCI, U | 0.0 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for cultivating. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Dimethylamine {RoW}| dimethylamine production | Cut-off, U | 0.28 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Mass of 2,4-D applied to cereal silage field. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Glyphosate {RoW}| glyphosate production | Cut-off, U | 1.12 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Mass of glyphosate applied to cereal silage field. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Hay baling, large square bales, broadacre crop, controlled traffic {AU}| | AusLCI, U | 0.014499999999999999 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for contolled traffic hay baling into square bales. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Hay baling, large square bales, broadacre crop, conventional {AU}| | AusLCI, U | 0.348 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for hay bailing into square bales. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Hay baling, round bales, broadacre crop, controlled traffic {AU}| | AusLCI, U | 0.014499999999999999 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for contolled traffic hay bailing. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Hay baling, round bales, broadacre crop, conventional {AU}| | AusLCI, U | 0.348 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for hay bailing into round bales. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Hay mowing, broadacre crop, controlled traffic {AU}| | AusLCI, U | 0.04 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for contolled traffic hay mowing. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Hay mowing, broadacre crop, conventional {AU}| | AusLCI, U | 0.96 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for hay mowing. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Hay raking, broadacre crop, controlled traffic {AU}| | AusLCI, U | 0.04 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for contolled traffic hay raking. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Hay raking, broadacre crop, conventional {AU}| | AusLCI, U | 0.96 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for hay raking. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Limestone, milled, loose {RoW}| market for limestone, milled, loose | Cut-off, U | 598.9804225706665 | kg | (3,1,1,1,3,na) - 1.24 Uncertainty. Mass of lime applied to cereal silage field. Source: Baldock 2012 |
| Liming, broadacre crop, pre & post-emergence, controlled traffic {AU}| | AusLCI, U | 0.01 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for contolled traffic lime application. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Liming, broadacre crop, pre & post-emergence, conventional {AU}| | AusLCI, U | 0.24 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for liming. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Monoammonium phosphate {AU}| market for monoammonium phosphate | AusLCI, U | 41.4 | kg | (3,1,1,1,3,na) - 1.24 Uncertainty. Mass of MAP applied to cereal silage field. Source: Baldock 2012 |
| Pesticide, unspecified {RoW}| pesticide production, unspecified | Cut-off, U | 0.342 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Mass of MCPA750 applied to cereal silage field. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Pesticide, unspecified {RoW}| pesticide production, unspecified | Cut-off, U | 0.125 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Mass of Propiconazole applied to cereal silage field. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Pesticide, unspecified {RoW}| pesticide production, unspecified | Cut-off, U | 3.0 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Mass of metsulfuron-methyl applied to cereal silage field. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Pesticide, unspecified {RoW}| pesticide production, unspecified | Cut-off, U | 0.233 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Mass of Fluroxypyr applied to cereal silage field. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Planting, broadacre crop, soil clay content greater than 20%, controlled traffic {AU}| | AusLCI, U | 0.04 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for contolled traffic planting. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Planting, broadacre crop, soil clay content greater than 20%, conventional {AU}| | AusLCI, U | 0.96 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for planting. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Pumping, irrigation, 70m total pumping head, 100% diesel {AU}| | AusLCI, U | 0.0 | ML | (2,2,1,2,2,na) - 1.09 Uncertainty. Energy used in irrigation.Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Spraying, broadacre crop, pre & post-emergence, controlled traffic {AU}| | AusLCI, U | 0.24 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for contolled traffic spraying of crop protection chemicals. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Spraying, broadacre crop, pre & post-emergence, conventional {AU}| | AusLCI, U | 5.76 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for spraying of crop protection chemicals. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Tillage, rolling {RoW}| tillage, rolling | Cut-off, U | 1.0 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Operational inputs for tillage. Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Transport, truck, 3,5 to 16t, fleet average {AU}| | AusLCI, U | 146.89608451413332 | t*km | (3,1,1,1,3,na) - 1.24 Uncertainty. Total transport of inputs to region. |
| Travel spray boom irrigation system, production, per ha {AU}| | AusLCI, U | 1.0 | ha | (2,2,1,2,2,na) - 1.09 Uncertainty. Irrigation infrastructure.Calculated as: number of times each ha is processed over a year * number of ha. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Urea ammonium nitrate {AU}| market for urea ammonium nitrate | AusLCI, U | 0.0 | kg | (3,1,1,1,3,na) - 1.24 Uncertainty. Mass of UAN applied to cereal silage field. Source: Baldock 2012 |
| Urea {AU}| market for urea | AusLCI, U | 89.0 | kg | (3,1,1,1,3,na) - 1.24 Uncertainty. Mass of urea applied to cereal silage field. Source: Baldock 2012 |
Elementary flow inputs
| Flow | Sub-compartment | Amount | Unit | Comment |
|---|---|---|---|---|
| Carbon dioxide, in air | in air | 22870.61333333334 | kg | Atmospheric CO2 absorbed by the plant. Calculated. |
| Occupation, annual crop, non-irrigated | land | 1.0 | ha*a | Actual land used for the cropping |
| Occupation, annual crop, non-irrigated, fallow | land | 0.33000000000000007 | ha*a | Crop fallow as a part of crop rotation allocated across all crops in the rotation |
| Transformation, from annual crop, non-irrigated | land | 1.0 | m2 | No net land transformation assumed. Any net land transformations due to direct land use change (dLUC) to be added when more clarity regarding LUC estimation method, and consistent with carbon fluxes from dLUC |
| Transformation, to annual crop, non-irrigated | land | 1.0 | m2 | No net land transformation assumed. Any net land transformations due to direct land use change (dLUC) to be added when more clarity regarding LUC estimation method, and consistent with carbon fluxes from dLUC |
Elementary flow outputs
| Flow | Compartment | Sub-compartment | Amount | Unit | Comment |
|---|---|---|---|---|---|
| 2,4-D amines | Emission to soil | agricultural | 0.25818800000000003 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of 2,4-D applied to field that is lost as emissions to agricultural soil. Calculated as: mass applied to field * (fraction lost to agricultural soil where crop is being grown + fraction lost to other agricultural lands (off-field)). Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| 2,4-D, dimethylamine salt | Emissions to air | low. pop. | 0.0028000000000000004 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of 2,4-D applied to field that is lost as emissions to air. Calculated as: mass applied to field * fraction lost as emissions to air. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| 2,4-D, dimethylamine salt | Emissions to water | river | 0.0003444 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of 2,4-D applied to field that is lost as emissions to fresh water. Calculated as: mass applied to field * fraction lost as emissions to water. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| 2,4-D, dimethylamine salt | Emissions to soil | forestry | 0.018648000000000005 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of 2,4-D applied to field that is lost as emissions to agricultural soil. Calculated as: mass applied to field * (fraction lost to agricultural soil where crop is being grown + fraction lost to other agricultural lands (off-field)). Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Ammonia | Emission to air | low population density | 6.019983200000001 | kg | (1,3,2,1,1,na) - 1.4 Uncertainty.Direct emissions from fertilizers. Ammonia emissions. Total mass of N applied * fraction of nitrogen volatilized * conversion factor Source: NIR 2023 (DCCEEW, 2025). |
| Antimony, ion | Emissions to air | low. pop. | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Arsenic, ion | Emissions to air | low. pop. | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Butadiene | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Cadmium (II) | Emissions to soil | agricultural | 0.00021423999999999998 | kg | (2,3,2,3,1,na) - 2 Uncertainty. Mass of metal cadmium contained in fertilizer x fraction released in soil. Source: |
| Cadmium (II) | Emissions to air | low. pop. | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Carbon dioxide | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Annual soil carbon change. By default the switch is set to 0 to not soil carbon change. To include the value for soil carbon change set the switch to 1. The results still contain significant uncertainty and should be used with extreme care. This value was calculated using APSIM for the agroecological region for the current rotations of crops in this area. Source: NIR 2023 (DCCEEW, 2025). |
| Carbon dioxide, fossil | Emission to air | low population density | 65.26666666666667 | kg | (1,3,2,1,1,na) - 1.4 Uncertainty.Emissions from urea application. Reported as biogenic due to the ecoinvent background process used. Carbon applied with urea x conversion factor Source: NIR 2023 (DCCEEW, 2025). |
| Carbon dioxide, fossil | Emission to air | low population density | 237.1962473379839 | kg | (1,3,2,1,1,na) - 1.08 Uncertainty.Direct emissions caused by the application of lime to soil to counteract acidification. (M lin applied to neautralise NAAR * lime EF form NIR 22) Source: NIR 2023 (DCCEEW, 2025). |
| Carbon dioxide, from soil or biomass stock | Emission to air | low population density | 0.0 | kg | This flow intentionally set to zero. Carbon fluxes from direct land use change (dLUC) to be added when more clarity regarding LUC estimation method Source: |
| Carbon dioxide, non-fossil | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x carbon content x CH4 emission factor x conversion factor Source: NIR 2023 (DCCEEW, 2025). |
| Carbon dioxide, non-fossil | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues - Residue which is not removed, and not burnt is assumed to degrade to biogenic carbon dioxide. Source: NIR 2023 (DCCEEW, 2025). |
| Carbon monoxide | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Carbon monoxide, non-fossil | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x carbon content x CO emission factor x conversion factor Source: NIR 2023 (DCCEEW, 2025). |
| Chromium (VI) | Emissions to air | low. pop. | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Cobalt II | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Copper, ion | Emissions to air | low. pop. | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Dinitrogen monoxide | Emission to air | low population density | 0.35527194122 | kg | (1,3,2,1,1,na) - 1.4 Uncertainty.Direct emissions from fertilizers. Nitrous oxide emissions. Total mass of N applied * emission factor * conversion factor Source: NIR 2023 (DCCEEW, 2025). |
| Dinitrogen monoxide | Emission to air | low population density | 0.000291667888512 | kg | (1,3,2,1,1,na) - 1.4 Uncertainty.Fertilizers leaching. Nitrous oxide emissions. Total mass of N applied * fraction of nitrogen available for leaching * fraction of nitrogen leaching * emission factor * conversion factor Source: NIR 2023 (DCCEEW, 2025). |
| Dinitrogen monoxide | Emission to air | low population density | 0.03907991353420001 | kg | (1,3,2,1,1,na) - 1.4 Uncertainty.Indirect emissions from fertilizers. Nitrous oxide emissions. Total mass of N applied * fraction of nitrogen volatilized * emission factor * conversion factor Source: NIR 2023 (DCCEEW, 2025). |
| Dinitrogen monoxide | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x nitrogen content above ground x N2O emission factor x conversion factor Source: NIR 2023 (DCCEEW, 2025). |
| Dinitrogen monoxide | Emission to air | low population density | 1.5399284352319997 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from residues above ground nitrogen yield x quantity of plant residue x dry matter content x carbon content x nitrogen content x (1-fraction of residues burnt - fraction of residues removed) x emission factor x conversion factor Source: NIR 2023 (DCCEEW, 2025). |
| Dinitrogen monoxide | Emission to air | low population density | 0.0 | kg | (1,3,2,1,1,na) - 1.4 Uncertainty.Nitrous oxide production from mineralisation due to loss of soil carbon, NIR 2022 Source: NIR 2023 (DCCEEW, 2025). |
| Fluroxypyr | Emissions to soil | forestry | 0.015517800000000002 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of Fluroxypyr applied to field that is lost as emissions to agricultural soil. Calculated as: mass applied to field * (fraction lost to agricultural soil where crop is being grown + fraction lost to other agricultural lands (off-field)). Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Fluroxypyr | Emission to soil | agricultural | 0.2148493 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of Fluroxypyr applied to field that is lost as emissions to agricultural soil. Calculated as: mass applied to field * (fraction lost to agricultural soil where crop is being grown + fraction lost to other agricultural lands (off-field)). Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Fluroxypyr | Emissions to air | low. pop. | 0.00233 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of Fluroxypyr applied to field that is lost as emissions to air. Calculated as: mass applied to field * fraction lost as emissions to air. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Fluroxypyr | Emissions to water | river | 0.00028659000000000003 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of Fluroxypyr applied to field that is lost as emissions to fresh water. Calculated as: mass applied to field * fraction lost as emissions to water. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Glyphosate | Emission to air | low population density | 0.011200000000000002 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of glyphosate applied to field that is lost as emissions to air. Calculated as: mass applied to field * fraction lost as emissions to air. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Glyphosate | Emissions to soil | forestry | 0.07459200000000002 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of glyphosate applied to field that is lost as emissions to agricultural soil. Calculated as: mass applied to field * (fraction lost to agricultural soil where crop is being grown + fraction lost to other agricultural lands (off-field)). Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Glyphosate | Emission to soil | agricultural | 1.0327520000000001 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of glyphosate applied to field that is lost as emissions to agricultural soil. Calculated as: mass applied to field * (fraction lost to agricultural soil where crop is being grown + fraction lost to other agricultural lands (off-field)). Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Glyphosate | Emissions to water | river | 0.0013776 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of glyphosate applied to field that is lost as emissions to fresh water. Calculated as: mass applied to field * fraction lost as emissions to water. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Lead (II) | Emissions to air | low. pop. | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Lead (II) | Emissions to soil | agricultural | 0.00012922999999999998 | kg | (2,3,2,3,1,na) - 2 Uncertainty. Mass of metal lead contained in fertilizer x fraction released in soil. Source: |
| MCPA dimethylamine salt | Emissions to water | river | 0.00042066 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of MCPA750 applied to field that is lost as emissions to fresh water. Calculated as: mass applied to field * fraction lost as emissions to water. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| MCPA dimethylamine salt | Emissions to soil | forestry | 0.022777200000000004 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of MCPA750 applied to field that is lost as emissions to agricultural soil. Calculated as: mass applied to field * (fraction lost to agricultural soil where crop is being grown + fraction lost to other agricultural lands (off-field)). Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| MCPA dimethylamine salt | Emissions to air | low. pop. | 0.0034200000000000003 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of MCPA750 applied to field that is lost as emissions to air. Calculated as: mass applied to field * fraction lost as emissions to air. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| MCPA dimethylamine salt | Emission to soil | agricultural | 0.3153582 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of MCPA750 applied to field that is lost as emissions to agricultural soil. Calculated as: mass applied to field * (fraction lost to agricultural soil where crop is being grown + fraction lost to other agricultural lands (off-field)). Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Manganese (II) | Emissions to air | low. pop. | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Mercury (II) | Emissions to air | low. pop. | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Mercury (II) | Emissions to soil | agricultural | 0.0000004896499999999999 | kg | (2,3,2,3,1,na) - 2 Uncertainty. Mass of metal mercury contained in fertilizer x fraction released in soil. Source: |
| Methane, non-fossil | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x carbon content x CH4 emission factor x conversion factor Source: NIR 2023 (DCCEEW, 2025). |
| Methane, non-fossil | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Methane emission from water storage for irrigation Source: NIR 2023 (DCCEEW, 2025). |
| Metsulfuron-methyl | Emission to soil | agricultural | 2.7662999999999998 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of metsulfuron-methyl applied to field that is lost as emissions to agricultural soil. Calculated as: mass applied to field * (fraction lost to agricultural soil where crop is being grown + fraction lost to other agricultural lands (off-field)). Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Metsulfuron-methyl | Emissions to air | low. pop. | 0.03 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of metsulfuron-methyl applied to field that is lost as emissions to air. Calculated as: mass applied to field * fraction lost as emissions to air. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Metsulfuron-methyl | Emissions to water | river | 0.0036899999999999997 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of metsulfuron-methyl applied to field that is lost as emissions to fresh water. Calculated as: mass applied to field * fraction lost as emissions to water. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Metsulfuron-methyl | Emissions to soil | forestry | 0.19980000000000003 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of metsulfuron-methyl applied to field that is lost as emissions to agricultural soil. Calculated as: mass applied to field * (fraction lost to agricultural soil where crop is being grown + fraction lost to other agricultural lands (off-field)). Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| NMVOC, non-methane volatile organic compounds | Emissions to air | low. pop. | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x carbon content x NMVOC emission factor x conversion factor Source: NIR 2023 (DCCEEW, 2025). |
| Nickel (II) | Emissions to air | low. pop. | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Nitrate | Emission to water | river | 0.07393017246451201 | kg | (2,3,2,3,1,na) Fertilizers leaching. Nitrous oxide emissions. Calculated as: Total mass of N applied x fraction of N available for leaching x fraction of N leaching from NIR x (1-N reemitted to air) x conversion factor.NIR 2023 (DCCEEW, 2025). |
| Nitrogen oxides | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Nitrogen oxides | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x nitrogen content above ground x NOx emission factor x conversion factor Source: NIR 2023 (DCCEEW, 2025). |
| Particulates, < 10 um | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Phosphate | Emission to water | surface water | 0.00038210538638999995 | kg | (2,3,2,3,1,na) 1.51 Uncertainty. Phosphorus run-off to surface waters. 2.3 is used to convert P quantity to P2O5. Nemecek 2007 ecoinvent methodology. |
| Phosphate | Emission to water | ground water | 0.0004444221600000001 | kg | (2,3,2,3,1,na) 1.51 Uncertainty. Phosphorus leaching to ground water 0.07kg P per ha.a as phosphate PO4. Ecoinvent report on agriculture. |
| Phosphorus | Emission to water | river | 0.011215152519298562 | kg | (2,3,2,3,1,na) 1.51 Uncertainty. Phosphorus emissions through erosion by water to surface waters. ecoinvent report on agriculture. |
| Propiconazole | Emission to air | low population density | 0.00125 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of Propiconazole applied to field that is lost as emissions to air. Calculated as: mass applied to field * fraction lost as emissions to air. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Propiconazole | Emissions to soil | forestry | 0.008325 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of Propiconazole applied to field that is lost as emissions to agricultural soil. Calculated as: mass applied to field * (fraction lost to agricultural soil where crop is being grown + fraction lost to other agricultural lands (off-field)). Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Propiconazole | Emissions to water | river | 0.00015375 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of Propiconazole applied to field that is lost as emissions to fresh water. Calculated as: mass applied to field * fraction lost as emissions to water. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Propiconazole | Emission to soil | agricultural | 0.11526249999999999 | kg | (2,2,1,2,2,na) -1.09 Uncertainty. Fraction of Propiconazole applied to field that is lost as emissions to agricultural soil. Calculated as: mass applied to field * (fraction lost to agricultural soil where crop is being grown + fraction lost to other agricultural lands (off-field)). Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Selenium IV | Emission to air | low population density | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Soil loss by erosion into water | Emissions to water | — | 5037.303168 | kg | (1,3,3,1,1,na) - 1.05 Uncertainty. [kg ha-1 y-1] Average annual soil erosions to water. Based on revised universal soil loss equation (RUSLE)2016/Teng, H. et.al. |
| TOC, Total Organic Carbon | Emissions to air | low. pop. | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| Zinc (II) | Emissions to air | low. pop. | 0.0 | kg | (2,3,2,3,1,na) - 1.5 Uncertainty.Emissions from burning residues = yield x quantity of plant residue x fraction of residues remaining at time of burning x dry matter content x burning efficiency x fraction burnt* emission factor from NPI workbook/1000. (pg 13 Environment Australia, Aggregated Emmissions from Prescribed burning and Wildfires.1999) Source: NIR 2023 (DCCEEW, 2025). |
| hydrogen ions | Emissions to soil | agricultural | 0.0000000000000017763568394002505 | kg | (4,3,1,1,1,na) - 1.22 Uncertainty. Acidity added due to the entire crop system. Crops addition, fertiliser addition, imported crop addition and addition from lime. Calculated as: sum of all acidity sources Source: |
Parameters
| Name | Value | Formula | Description |
|---|---|---|---|
| Replace1stGlyphosate | 0.7050000000000001 | iff(No_add_tillage<1;No_add_tillage;1) | Additional tillage - Switch |
| FLXP_appl | 0.233 | — | (2,2,1,2,2,na) -[kg] Mass of Fluroxypyr applied to field. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| EFburn_NMVOC | 0.0091 | — | (2,3,2,3,1,na) - [Gg element in species/Gg element in fuel burnt] Emission factor from crop residues burning for NMVOC - NIR 2023 (DCCEEW, 2025). |
| Yield | 17800.0 | — | (1,2,1,1,1,na) -[kg/ha] yield, calculated from five year average ('18 - '22) - Australian Bureau of Statistics 2017-2022 |
| EF_Chromium_VI | 0.000264 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| Soil_C_loss | — | — | (2,1,1,1,1,na) - [kgC/ha/a] Annual soil carbon change. This value was calculated using APSIM for the agroecological region for the current rotations of crops in this area. The results still contain significant uncertainty and should be used with extreme care - Zhongkui Liu (CSIRO, unpublished) |
| EFN_DS_nonirrc_a600mm | 0.008 | — | (1,3,2,1,1,na) - [kgN2O-N/kgN] N2O emission factor for direct emissions from synthetic fertilizers applied on non-irrigated crop with rainfall >600mm - NIR 2023 (DCCEEW, 2025). |
| EF_Antimony | 0.000391 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| Allocation | 1.0 | — | Allocation switch, 1 = Economic alocation (default for AusLCI), 2 = Energy allocation, 3 = Mass allocation, - |
| AshAlkalinity_Crop | 0.6 | — | (4,3,1,1,1,na) - [kmol/t] Alkalinity of cereal silage removed - Baldock et al. 2009. Building a foundation for soil condition assessment. CSIRO Land and Water Science Report. |
| RUSLE_LS | 8.24 | — | (1,3,3,1,1,na) - L = Slope length factor and S is slope steepness factor - Revised universal soil loss equation (RUSLE) derrived from GIS layer provided in Teng, Viscarra et al 2018 |
| EFN_residues | 0.005 | — | (1,3,2,1,1,na) - [kgN2O-N/kgN] IPCC emission factor for N emissions from residues - NIR 2023 (DCCEEW, 2025). |
| RUSLE_P | 1.0 | — | (1,3,3,1,1,na) - P = Practice factor - Revised universal soil loss equation (RUSLE) derrived from GIS layer provided in Teng, Viscarra et al 2019 |
| C_in_urea | 0.2 | — | (2,3,3,1,1,na) - C content in urea - |
| PFERT | 9.108 | M_MAP*P_in_MAP | [kg P] Total mass of P applied. Calculated as: sum of (mass of phosphorus fertilizer x phosphorus content) - Calculated |
| N_in_MAP | 0.1 | — | (2,3,2,3,1,na) - Nitrogen fraction in MAP - IFA Fertilizer Industry Federation of Australia Environment report 2010 |
| Dam_EF | 201.0 | — | (1,3,2,1,1,na) -[kg] Emission factor for methane emitted from dams (151 kg CH4/ha/year) multipled by the elemental to molecular conversion for methane (1.333) - NIR 2023 (DCCEEW, 2025) |
| AF_Lime | -0.02 | — | (2,2,2,2,1,na) - [kmolH+] Acid factor of lime - Maintenance Lime Rate Calculator PIRSA, 2016 |
| HgFERT | 0.0000004896499999999999 | (M_MAP*Hg_in_MAP+ M_Urea_Tot*Hg_in_Urea+M_UAN*Hg_in_UAN)*1e-6 | [kgHg] Total amount of Hg applied: mass of fertilizer x Hgcontent in fertilizer - Calculated |
| AF_MAP0L | 0.036 | — | (2,2,2,2,1,na) - [kmolH+/kg N] Acid factor of MAP with 0% leaching - Maintenance Lime Rate Calculator PIRSA, 2016 |
| M_tot_supply | 734.4804225706665 | M_MAP+M_Urea_Tot+M_UAN+M_PestChem+M_Lime | [kg] Total mass of products transported to the farm gate - Calculated |
| EFburn_NOx | 0.21 | — | (2,3,2,3,1,na) - [Gg element in species/Gg element in fuel burnt] Emission factor from crop residues burning for NOx - NIR 2023 (DCCEEW, 2025). |
| FracOF_AgSoil | 0.0921 | — | (3,2,4,2,4,na) - Primary partitioning fraction of crop protection AI deposited on agricultural soil outside the field of application - Calculated using consensus model based on Pest LCI |
| PROPI_appl | 0.125 | — | (2,2,1,2,2,na) -[kg] Mass of Propiconazole applied to field. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| M_PestChem | 5.1 | GLYP_appl+MCPA750_appl+MTSM_appl+PROPI_appl+twofourD_appl+FLXP_appl | [g] Cumulative mass of all the pesticides applied on field. - Calculated |
| Res_crop | 1.34 | — | (1,3,2,1,1,na) - [kg crop residue/kg crop]] Residue/crop ratio for cereal silage - NIR 2023 (DCCEEW, 2025). |
| Nb_Haybaling_round | 0.725 | — | (2,2,1,2,2,na) - Number of hay baling operations - AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT adjusted by expert opinion |
| Carbon_Straw | — | Straw_DM*CC_residue*44/12 | [kgCO2] Biogenic carbon absorbed by straw - Calculated |
| P_Straw | 50.0 | — | (4,1,1,2,1,na) -[AUD] Australian dollars per tonne - |
| DM_crop | 0.88 | — | (2,3,3,1,1,na) - [kg dry weight/kg crop] Dry matter content of cereal silage crop - NIR 2023 (DCCEEW, 2025). |
| AF_UAN | 0.0000134784 | AF_UAN0L*(1-FracN_Leach*FracWET)+AF_UAN100L*(FracN_Leach*FracWET) | [kmolH+/kgN] Acid factor of UAN taking account of the fraction of N being leached - Calculated |
| Replace2ndGlyphosate | — | iff(No_add_tillage>1;No_add_tillage-1;0) | Additional tillage - Switch |
| AF_UAN100L | 0.036 | — | (2,2,2,2,1,na) - [kmolH+/kg N] Acid factor of UAN with 100 % leaching - Maintenance Lime Rate Calculator PIRSA, 2016 |
| All_En | 100.0 | (grain_DM/(straw_DM+grain_DM))*100 | [%] Allocation to culled breeders based on energy content - Calculated |
| P_in_soil | 0.00045 | — | (1,3,3,1,1,na) - [kgP/tsoil] P content in soil in the AER of cropping - Soil and Landscape Grid of Australia |
| Lime_purity | 0.9 | — | (2,1,1,1,1,na) - fractional purity of limestone NIR 2023 (DCCEEW 2025). |
| Nb_Spraying | 6.0 | — | (2,2,1,2,2,na) - Number spraying applications (pre & post-emergence) - AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT adjusted by expert opinion |
| M_MAP | 41.4 | — | (3,1,1,1,3,na) - [kg] Quantity of monoammonium phosphate (MAP) applied - Baldock 2012 |
| EFN_leachS | 0.011 | — | (1,3,2,1,1,na) - [kgN2O-N/kgN] IPCC emission factor for N leaching and runoff from synthetic fertiliser - NIR 2023 (DCCEEW, 2025). |
| AF_Urea0L | — | — | (2,2,2,2,1,na) - [kmolH+/kg N] Acid factor of MAP with 100% leaching - Maintenance Lime Rate Calculator PIRSA, 2016 |
| Straw_DM | — | m_straw*DM_residue | [kg] Total dry mass of straw - Calculated |
| RUSLE_C | 0.0144 | — | (1,3,3,1,1,na) - C = Cover factor - Revised universal soil loss equation (RUSLE) derrived from GIS layer provided in Teng, Viscarra et al 2020 |
| EF_N_Direct | 0.0050165 | EFN_DS_nonirrc_b600mm*fracRainb600mm+(1-fracRainb600mm)*EFN_DS_nonirrc_a600mm | [kgN2O-N/kgN] N2O emission factor for direct emissions from synthetic fertilizers applied to non-irrigated crop, where percentage of cultivation area with rainfall <600mm = ##FRAC <600mm## - National Inventory Report 2014, Vol 1 (2016) climate data source from Queensland Government, 2023 |
| EF_Manganese | 0.00107 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| ED_Straw | — | — | (1,1,3,3,2,na) -[MJ/kg DM ] energy density of cereal silage straw - Feedipedia |
| Pb_in_MAP | 3.1 | — | (2,3,2,3,1,na) - [mg/kg] Lead content - Vic DPI fertiliser survey 2008 |
| EFburn_N2O | 0.0076 | — | (2,3,2,3,1,na) - [Gg element in species/Gg element in fuel burnt] Emission factor from crop residues burning for N2O - NIR 2023 (DCCEEW, 2025). |
| RUSLE_R | 1590.0 | — | (1,3,3,1,1,na) - [MJ mm ha-1 hr-1 y-1] R= Rainfail - runoff erosivity factor. - Revised universal soil loss equation (RUSLE) derrived from GIS layer provided in Teng, Viscarra et al 2016 |
| Burn_efficiency | 0.96 | — | (2,3,2,3,1,na) - Default burning efficiency for residue from crop - NIR 2023 (DCCEEW, 2025). |
| M_Urea_tot | 89.0 | M_urea+(M_urea_SOC*Soil_C_Change_switch) | [kg] Total urea applied to field - |
| Nb_Planting_clay20 | 1.0 | — | (2,2,1,2,2,na) - Number of planting operations (soil clay content >20%) - AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT adjusted by expert opinion |
| PbFERT | 0.00012922999999999998 | (M_MAP*Pb_in_MAP+ M_Urea_Tot*Pb_in_Urea+M_UAN*Pb_in_UAN)*1e-6 | [kgPb] Total amount of Pb applied: mass of fertilizer x Pbcontent in fertilizer - Calculated |
| AF_MAP | 0.03601347839999999 | AF_MAP0L*(1-FracN_Leach*FracWET)+AF_MAP100L*(FracN_Leach*FracWET) | [kmolH+/kgN] Acid factor of MAP, taking account of the fraction of N being leached - Calculated |
| m_straw | — | yield*Res_crop*fremoved | [kg] Total wet mass of straw - Calculated |
| CC_crop | 0.4 | — | (2,3,3,1,1,na) - [KgC/kgDM] Carbon mass fraction in dry matter for cereal silage crop - NIR 2023 (DCCEEW, 2025). |
| EF_Copper | 0.000187 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| EFN_mineral | 0.0041 | — | (1,3,2,1,1,na) - [kgN2O-N/kgN] emission factor for N emissions from mineralisations - NIR 2023 (DCCEEW, 2025). |
| RUSLE_K | 0.0267 | — | (1,3,3,1,1,na) - [t ha hr ha-1 MJ-1 mm-1] K= Soil erodibility factor - Revised universal soil loss equation (RUSLE) derrived from GIS layer provided in Teng, Viscarra et al 2017 |
| EF_Mercury | 0.000111 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| M_UAN | — | — | (3,1,1,1,3,na) - [kg] Quantity of urea and ammonium nitrate (UAN) applied, calculated using the Generic Yield and N Calculator - Baldock 2012 |
| Fburnt | 0.06 | — | (1,3,2,1,1,na) - Fraction of residues burnt for the AER - NIR 2023 (DCCEEW, 2025). |
| P_in_MAP | 0.22 | — | (2,3,2,3,1,na) - Phosphorus fraction in MAP - IFA Fertilizer Industry Federation of Australia Environment report 2010 |
| soil_NC_frac | 0.09090909090909091 | 1/(10+1) | fraction of N to C in soil, based on a CN ratio of 1:10 - NIR 2023 (DCCEEW, 2025). |
| Pb_in_Urea | 0.01 | — | (2,3,2,3,1,na) - [mg/kg] Lead content - Vic DPI fertiliser survey 2008 |
| EF_Arsenic | 0.0000255 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| FracAir | 0.01 | — | (3,2,4,2,4,na) - Primary partitioning fraction of crop protection AI releaesd to air - Calculated using consensus model based on Pest LCI |
| All_Straw_En | — | (straw_DM*ed_straw)/(ed_Straw*straw_DM+grain_DM*ED_crop)*100 | [%] Allocation to prime cattle based on energy content - Calculated |
| Cd_in_Urea | 0.5 | — | (2,3,2,3,1,na) - [mg/kg ] Cadmium content - Vic DPI fertiliser survey 2008 |
| Biogenic_carbon_Allocation_adjust_grain | — | (Carbon_Grain-Biogenic_CO2sent_out_with_grain)/(All_Grain/100) | [kgCO2] kg carbon correction factor for the determining product (cereal silage) - Calculated |
| Pb_in_UAN | 0.0035 | — | (2,3,2,3,1,na) - [mg/kg] Lead content (only accounting for Cd content in Urea, which is 35% of UAN) - Vic DPI fertiliser survey 2008 |
| EF_Butadieneb | 0.0492 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| N_in_urea | 0.46 | — | (2,3,2,3,1,na) - Nitrogen fraction in urea - |
| EF_Lead | 0.000434 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| Fresremaining | — | — | (1,3,2,1,1,na) - Fraction remaining at the time of burning for the AER - NIR 2023 (DCCEEW, 2025). |
| Nb_raking | 1.0 | — | (2,2,1,2,2,na) - Number of hay raking opperations - AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT adjusted by expert opinion |
| All_Mass | 100.0 | (grain_DM/(straw_DM+grain_DM))*100 | [%] Mass allocation fraction for Culled cattle - Calculated |
| AF_UAN0L | — | — | (2,2,2,2,1,na) - [kmolH+/kg N] Acid factor of UAN with 0 % leaching - Maintenance Lime Rate Calculator PIRSA, 2016 |
| Methane_in_burn | — | Yield*Res_crop*Fresremaining*DM_crop*Burn_efficiency*Fburnt*CC_residue*EFburn_CH4*44/12 | [kgCO2] Methane as CO2 for balance purposes - Calculated |
| No_add_tillage | 0.7050000000000001 | Frac_No_till*0+Frac_Min_till*1+Frac_Multi_till*2 | Additional tillage - Switch |
| Water_irr | — | — | (2,2,1,2,2,na) - [ML] Volume of irrigation applied - AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT adjusted by expert opinion |
| Dam_area | — | — | (1,3,2,1,1,na) -[ha] Surface area of farm dams for irrigation - ABARES land use classification, ausdams.org |
| All_Grain | 100.0 | iff(Allocation=2; All_EN; iff(Allocation =3; All_Mass;All_Eco)) | Allocation to wheat - Switch |
| EFN_DS_nonirrc_b600mm | 0.0029 | — | (1,3,2,1,1,na) - [kgN2O-N/kgN] N2O emission factor for direct emissions from synthetic fertilizers applied on non-irrigated crop with rainfall <600mm - NIR 2023 (DCCEEW, 2025). |
| OTHERDATA | 1.0 | — | OTHER DATA - - |
| EFburn_CO | 0.078 | — | (2,3,2,3,1,na) - [Gg element in species/Gg element in fuel burnt] Emission factor from crop residues burning for CO - NIR 2023 (DCCEEW, 2025). |
| Carbon_Absorb_Residue | — | (Yield*Res_crop*DM_residue*CC_residue)*44/12 | [kgCO2] Carbon dioxide absorbtion in residue production - Calculated |
| All_Straw_Eco | — | (m_straw*P_straw)/(P_Straw*m_straw+m_crop*P_crop)*100 | [%] Economic allocation fraction for prime cattle - default for AusLCI - Calculated |
| EF_Carbon_monoxide | 59.0 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| All_Straw | — | iff(Allocation=2; All_straw_EN; iff(Allocation =3; All_straw_Mass;All_straw_Eco)) | Allocation to straw - Switch |
| Nb_Liming | 0.25 | — | (2,2,1,2,2,na) - Number of liming events - AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT adjusted by expert opinion |
| EF_TOC | 5.5 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| MTSM_appl | 3.0 | — | (2,2,1,2,2,na) -[kg] Mass of metsulfuron-methyl applied to field. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| EFburn_CO2 | — | — | (2,3,2,3,1,na) - [Gg element in species/Gg element in fuel burnt] Emission factor from crop residues burning for CO2 - NIR 2023 (DCCEEW, 2025). |
| NAAR_Tot | 10.781647606272 | NAAR_Crop + NAAR_Cropimport+NAAR_fert | [kgH+] Total mass of H+ added due to the system - Net addition (-ve = subtraction) of H+ in kg - Calculated |
| fracS_Hg | 1.0 | — | (2,3,2,3,1,na) - Fraction of heavy metals from fertilizers released in soil - |
| NAAR_Cropimport | — | 0 | [kgH+] kg H+ accounts and nitrogen irons imported with other biogenic material such as stubble or compost from outside the field - Calculated |
| Nb_Rolling | 1.0 | — | (2,2,1,2,2,na) - Number of hay rolling opperations - AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT adjusted by expert opinion |
| M_Urea | 89.0 | — | (3,1,1,1,3,na) - [kg] Quantity of urea applied. This is the base amount of urea applied without accounting for N mineralisation that may occur with SOC change. - Baldock 2012 |
| P_crop | 300.0 | — | (1,1,1,2,1,na) -[AUD] Australian dollars per tonne - CSIRO, 2025 |
| Supply_distance | 200.0 | — | (4,3,1,3,1,na) - [km] average distance to supply farm inputs (fertilizers, pesticides, lime) - |
| AF_Urea100L | 0.036 | — | (2,2,2,2,1,na) - [kmolH+/kg N] Acid factor of urea with 100 % leaching - Maintenance Lime Rate Calculator PIRSA, 2016 |
| Lime_CO2 | 237.1962473379839 | M_lime*EFC_lime*lime_purity*(44/12) | [kg CO2eq] Direct emissions from lime applied to soil - NIR 2023 (DCCEEW, 2025), volume 1, equation 3G_1 |
| fracS_Pb | 1.0 | — | (2,3,2,3,1,na) - Fraction of heavy metals from fertilizers released in soil - |
| Soil_C_Change_Switch | — | — | By default the switch is set to 0 to not soil carbon change. To include the value for soil carbon change set the switch to 1. The results still contain significant uncertainty and should be used with extreme care. - |
| FracOF_NatSoil | 0.0666 | — | (3,2,4,2,4,na) - Primary partitioning fraction of crop protection AI deposited to natural soils - Calculated using consensus model based on Pest LCI |
| GLYP_appl | 1.12 | — | (2,2,1,2,2,na) -[kg] Mass of glyphosate applied to field. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Duration | 1.33 | — | (3,1,1,1,1,na) - [y] duration that one cycle of the crop uses the land, including fallow period. - |
| NAAR_Crop | 10.632 | (AshAlkalinity_crop*m_crop+AshAlkalinity_straw*m_straw)/1000 | [kgH+] Acidity added due to plant removal - Calculated |
| Carbon_not_burnt_in_burn_deg | — | Yield*Res_crop*Fresremaining*DM_residue*(1-Burn_efficiency)*Fburnt*CC_residue*44/12 | [kgCO2] Carbon emission from fraction of carbon not burnt in the burn - Calculated |
| EF_Selenium | 0.0000425 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| Frac_Multi_till | 0.271 | — | (3,2,3,2,1,na) - % of area with multiple tillage operations - Australian Bureau of Statistics 2018 |
| Grain_DM | 15593.6 | m_crop*DM_Crop | [kg] Total dry mass of grain - Calculated |
| AshAlkalinity_Straw | 0.4 | — | (4,3,1,1,1,na) - [kmol/t] Alkalinity of straw co-product removed - Baldock et al. 2009. Building a foundation for soil condition assessment. CSIRO Land and Water Science Report. |
| Carbon_monoxide_in_burn | — | Yield*Res_crop*Fresremaining*DM_crop*Burn_efficiency*Fburnt*CC_residue*EFburn_CO*44/12 | [kgCO2] Carbon monoxide as CO2 for balance purposes - Calculated |
| FracSoil | 0.83 | — | (3,2,4,2,4,na) - Primary partitioning fraction of crop protection AI deposited on agricultural soil on the field of application - Calculated using consensus model based on Pest LCI |
| MCPA750_appl | 0.342 | — | (2,2,1,2,2,na) -[kg] Mass of MCPA750 applied to field. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| Carbon_deg_before_burn | — | Yield*Res_crop*Fburnt*(1-Fresremaining)*DM_residue*CC_residue*44/12 | [kgCO2] Carbon emission from residue set to be burnt by degraded before burn - Calculated |
| EF_Cobalt | 0.0000935 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| FracRainb600mm | 0.585 | — | (1,1,1,1,1,na) - Percentage of cultivation area with rainfall <600mm - SILO, Queensland Government, 2024 |
| Seed_input | 80.0 | — | (3,3,2,3,2,na) - [kg/ha] of seed - |
| FracN_Leach | 0.24 | — | (1,3,2,1,1,na) - [kgN/kgN] Default fraction of N lost through leaching and runoff - NIR 2023 (DCCEEW, 2025). |
| EFburn_CH4 | 0.0035 | — | (2,3,2,3,1,na) - [Gg element in species/Gg element in fuel burnt] Emission factor from crop residues burning for CH4 - NIR 2023 (DCCEEW, 2025). |
| NCbg_residue | 0.01 | — | (1,3,2,1,1,na) - [kgN/kgDM] Nitrogen content of below-ground cereal silage crop residues - NIR 2023 (DCCEEW, 2025). |
| fracS_Cd | 1.0 | — | (2,3,2,3,1,na) - Fraction of heavy metals from fertilizers released in soil - |
| M_Urea_SOC | — | Iff(Soil_C_loss<0;(soil_C_Loss/11)/0.46;0) | When soil carbon increases there is a demand for additional nitrogen which is assumed to be supplied by urea. |
| Total_area | 1870.0 | — | (2,1,1,1,1,na) - [ha] Total area - Australian Bureau of Statistics 2017-2022 |
| EF_Zinc | 0.000714 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| Surface | 1.0 | — | [ha] - |
| Nb_Cultivating | — | — | (2,2,1,2,2,na) - Number of cultivations - AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT adjusted by expert opinion |
| FracN_GASF | 0.11 | — | (1,3,2,1,1,na) - [kgN/kgN] IPCC default fraction of synthetic fertiliser N that volatilised as NH3- N and NOx-N - NIR 2023 (DCCEEW, 2025). |
| NAAR_FERT | 0.14964760627199997 | M_MAP*AF_MAP*N_In_MAP+M_Urea_Tot*AF_Urea*N_in_Urea+M_UAN*AF_UAN*N_in_UAN | [kmolH+] Total mass of H+ applied through fertilizers. Calculated as: sum of (mass of nitrogen fertilizer x Acid factor per fertiliser) - Calculated |
| Cd_in_MAP | 4.1 | — | (2,3,2,3,1,na) - [mg/kg ] Cadmium content - Vic DPI fertiliser survey 2008 |
| ED_crop | 17.8 | — | (1,1,3,3,2,na) -[MJ/kg DM ] Energy density of cereal silage crop - Feedipedia |
| Carbon_Grain | 22870.61333333334 | Grain_DM*CC_crop*44/12 | [kgCO2] Biogenic carbon absorbed by grain - Calculated |
| Carbon_Residue_remaining | — | Yield*Res_crop*((1-Fburnt-Fremoved))*DM_residue*CC_residue*44/12 | [kgCO2] Carbon emission from residue remaining - Calculated |
| CUrea | 17.8 | M_Urea_Tot*C_in_Urea | [kgC] Total mass of carbon applied through urea. Calculated as: mass of urea x carbon content in urea - Calculated |
| CC_residue | 0.4 | — | (2,3,3,1,1,na) - [KgC/kgDM] Carbon mass fraction in dry matter for cereal silage straw - NIR 2023 (DCCEEW, 2025). |
| FracWet | 0.00156 | — | (1,3,2,1,1,na) - Fraction of area of AER where leaching occurs i.e. evapo-transpiration:rainfall ratio is <0.8 or >1. Climate data sourced from the Soil and Landscape Grid of Australia - Climate data sourced from the Soil and Landscape Grid of Australia |
| Biogenic_CO2sent_out_with_grain | 22870.61333333334 | (Carbon_Grain+Carbon_Straw)*All_Grain/100 | [kgCO2eq] Biogenic carbon exported in cereal silage - Calculated |
| RUSLE | 5.037303168 | RUSLE_R*RUSLE_K*RUSLE_LS*RUSLE_P*RUSLE_C | [t/ha/y] Average anual soil erosions to water. ) - Revised universal soil loss equation (RUSLE) derrived from GIS layer provided in Teng, Viscarra etal 2016 |
| Fremoved | — | — | (1,3,2,1,1,na) - Fraction of the crop removed in the AER - NIR 2023 (DCCEEW, 2025). |
| Frac_Min_till | 0.163 | — | (3,2,3,2,1,na) - % of area under no till practices - Australian Bureau of Statistics 2018 |
| DLUC_switch | — | — | By default the switch is set to 0 to not include direct land use change. To include the value for direct land use change set the switch to 1. Direct land use change calculation approach is still uncertain - |
| DLUC_value | — | — | (2,2,1,1,1,na) - [tCO2eq/ha/year] Annual direct CO2 emissions from land use change - Blonk 2016 |
| N_Mineralised | — | Soil_C_loss*soil_NC_frac | [Kg N] The amount of N released from SOC mineralisation - Calculated |
| Carbon_burning | — | Yield*Res_crop*Fresremaining*DM_residue*Fburnt*CC_residue*Burn_efficiency*EFBurn_CO2*44/12 | [kgCO2] Carbon emission from residue burnt - Calculated |
| Cd_in_UAN | 0.175 | — | (2,3,2,3,1,na) - [mg/kg ] Cadmium content (only accounting for Cd content in Urea, which is 35% of UAN) - Vic DPI fertiliser survey 2008 |
| CdFERT | 0.00021423999999999998 | (M_MAP*Cd_in_MAP+ M_Urea_Tot*Cd_in_Urea+M_UAN*Cd_in_UAN)*1e-6 | [kgCd] Total amount of Cd applied: mass of fertilizer x Cdcontent in fertilizer - Calculated |
| CT_frac | 0.04 | — | Fraction of the region managed with controlled traffic - CSIRO practice survey |
| EF_Cadmium | 0.000527 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| Hg_in_UAN | 0.000297 | — | (2,3,2,3,1,na) - [mg/kg ] Mercury content (only accounting for Cd content in Urea, which is 35% of UAN) - Vic DPI fertiliser survey 2008 |
| twofourD_appl | 0.28 | — | (2,2,1,2,2,na) -[kg] Mass of 2,4-D applied to field. Source: AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT |
| NFERT | 45.080000000000005 | M_MAP*N_in_MAP+M_Urea_Tot*N_in_Urea+M_UAN*N_in_UAN | [kg N] Total mass of N applied. Calculated as: sum of (mass of nitrogen fertilizer x nitrogen content) - Calculated |
| Res_ab_crop | 0.37 | — | (1,3,2,1,1,na) - [kg/kg] Below ground/above ground residue ratio for cereal silage crop - NIR 2023 (DCCEEW, 2025). |
| DM_residue | — | — | (2,3,3,1,1,na) - [kg dry weight/kg residue] Dry matter content of cereal silage residues - NIR 2023 (DCCEEW, 2025). |
| m_crop | 17720.0 | yield-Seed_input | [kg] Total wet mass of grain - Calculated |
| All_Eco | 100.0 | (m_crop*P_crop)/(P_Straw*m_straw+m_crop*P_crop)*100 | [%] Economic allocation fraction for culled cattle - default for AusLCI - Calculated |
| Hg_in_MAP | 0.01 | — | (2,3,2,3,1,na) - [mg/kg ] Mercury content - Vic DPI fertiliser survey 2008 |
| EF_Oxides_of_nitrogen | 2.21 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| NCag_residue | 0.006 | — | (1,3,2,1,1,na) - [kgN/kgDM] Nitrogen content of above-ground cereal silage crop residue - NIR 2023 (DCCEEW, 2025). |
| N_in_UAN | 0.32 | — | (2,3,2,3,1,na) - Nitrogen fraction in UAN - |
| EF_Nickel | 0.000153 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| AF_Urea | 0.0000134784 | AF_Urea0L*(1-FracN_Leach*FracWET)+AF_Urea100L*(FracN_Leach*FracWET) | [kmolH+/kgN] Acid factor of urea taking account of the fraction of N being leached - Calculated |
| Carbon_Absorb_Crop | 22870.61333333334 | (((Yield-seed_input)*DM_crop*CC_crop))*44/12 | [kgCO2] Carbon dioxide absorbtion in grain net grain production (excluding seed input) - Calculated |
| EFC_lime | 0.12 | — | (1,3,2,1,1,na) -[kgC /kg] Emission factor for lime - NIR 2023 (DCCEEW, 2025) |
| Frac_No_till | 0.566 | — | (3,2,3,2,1,na) - % of area under low till practices - Australian Bureau of Statistics 2018 |
| Nb_Hay_mowing | 1.0 | — | (2,2,1,2,2,na) - Number of hay mowing opperations - AgMargins reports/2021/Queensland Government & Farm Gross Margin Guide/2024/SAGIT adjusted by expert opinion |
| FracOF_FW | 0.00123 | — | (3,2,4,2,4,na) - Primary partitioning fraction of crop protection AI deposited to fresh water - Calculated using consensus model based on Pest LCI |
| All_Straw_Mass | — | (straw_DM)/(straw_DM+grain_DM)*100 | [%] Mass allocation fraction for prime cattle - Calculated |
| CN_soil_ratio | 10.0 | — | (3,2,4,2,4,na) Soil Carbon:Nitrogen ration - NIR 2023 (DCCEEW, 2025) |
| AF_MAP100L | 0.072 | — | (2,2,2,2,1,na) - [kmolH+/kg N] Acid factor of urea with 0 % leaching - Maintenance Lime Rate Calculator PIRSA, 2016 |
| Carbon_balance | — | Carbon_Absorb_Crop+Carbon_Absorb_Residue-Carbon_burning-Carbon_not_burnt_in_burn_deg-Carbon_deg_before_burn-Carbon_Residue_remaining-Carbon_Grain-Carbon_Straw-Carbon_monoxide_in_burn-Methane_in_burn | [kgCO2] Balance check of all biogenic carbons - Calculated |
| EF_Particulate_matter | 8.5 | — | (3,1,5,3,2,na) - [g/kg] emission factor from NPI workbook/1000 - pg 13, Environment Australia, Aggregated Emissions from Prescribed burning and Wildfires, 1999 |
| M_Lime | 598.9804225706665 | NAAR_Tot/(-AF_Lime*lime_purity) | [kg] Mass of lime required to balance out acidity to soil from NAAR. Adjusted to account for the purity of limestone (90% of limestone is lime) - Calculated |
| Hg_in_Urea | 0.00085 | — | (2,3,2,3,1,na) - [mg/kg ] Mercury content - Vic DPI fertiliser survey 2008 |