{ "$type": "Models.Core.Simulations, Models", "ExplorerWidth": 0, "Version": 173, "Name": "Simulations", "Children": [ { "$type": "Models.PMF.Plant, Models", "PlantType": "Wheat", "IsEnding": false, "DaysAfterEnding": 0, "Name": "Wheat", "ResourceName": null, "Children": [ { "$type": "Models.Memo, Models", "Text": "_Brown, H.E., Huth, N.I. and Holzworth, D.P._\n\nThe APSIM wheat model has been developed using the Plant Modelling Framework (PMF) of [brown_plant_2014]. This new framework provides a library of plant organ and process submodels that can be coupled, at runtime, to construct a model in much the same way that models can be coupled to construct a simulation. This means that dynamic composition of lower level process and organ classes (e.g. photosynthesis, leaf) into larger constructions (e.g. maize, wheat, sorghum) can be achieved by the model developer without additional coding.\r\n\r\nThe wheat model consists of:\r\n\r\n* a phenology model to simulate development through sequential developmental phases \r\n* a structure model to simulate plant morphology \r\n* a collection of organs to simulate the various plant parts \r\n* an arbitrator to allocate resources (N, biomass) to the various plant organs \r\n\r\nThis work builds upon earlier APSIM Wheat models such as NWheat ([Asseng200225], [KeatingNWheat]), NWheatS ([Asseng1998163]), Cropmod-Wheat ([Wang2002GenericCropModel]), and the earlier versions developed in Plant (APSIM Wheat 7.5\") and then within the Plant Modelling Framework ([brown_plant_2014]).", "Name": "Introduction", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": 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Models", "ShowInDocs": true, "GraphsPerPage": 6, "Name": "AllocationMethods", "ResourceName": null, "Children": [ { "$type": "Models.PMF.Arbitrator.NitrogenAllocationsMethod, Models", "Name": "NitrogenAllocationsMethod", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false }, { "$type": "Models.PMF.RelativeAllocation, Models", "Name": "ArbitrationMethod", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.PMF.Arbitrator.AllocateUptakesMethod, Models", "Name": "AllocateUptakesMethod", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false }, { "$type": "Models.PMF.Arbitrator.WaterUptakeMethod, Models", "Name": "WaterUptakeMethod", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.PMF.Arbitrator.NitrogenUptakeMethod, Models", "Name": "NitrogenUptakeMethod", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false }, { "$type": "Models.PMF.Phen.Phenology, Models", "Name": "Phenology", "ResourceName": null, "Children": [ { "$type": "Models.Memo, Models", "Text": "Wheat exhibits a range of developmental responses to environment and these are strongly influenced by genotype characteristics. \nTemperature is the primary driver of development, increasing development rates and decreasing phase durations as it increases. These affects are captured by thermal time. However, wheat also exhibits cold and photoperiod sensitivities in its Vernalisaing phase and further photoperiod sensitivity in the SpikeletDifferenation and HeadEmergence phases. Photoperiod responses are seen as a reduction in the length of a phase for a photoperiod sensitive genotype in response to a longer photoperiod. Vernalisation responses are more complicated as they are driven by cool temperature but interact with photoperiod. For vernalisation sensitive varieties (Winter types), exposure to cool temperatures and/or short photoperiods during the Vernalising phase may reduce its thermal time duration. \n\nAPSIM wheat implements the Cereal Anthesis Molecular Phenology (CAMP) model to simulate development. It is based on the Kirby Framework which assumes the timing of anthesis is a result of the timing of flag leaf and an additional thermal time passage from there to heading then anthesis. It also assumes the timing of flag leaf is a result of the Final Leaf Number (which sets a target) and leaf appearance rate (which sets the rate of progress toward the target). Leaf appearance rate is a function of Thermal time and a genotype specific Phyllochron which changes with Haun stage as described by [Jamieson_LeafAppearance_1995]. \n\nFinal Leaf Number (FLN) is set on the day that terminal spikelet occurs as: \n\nFLN = 2.85 + 1.1 * TSHS \n\nWhere TSHS is the Haun stage on the day terminal spikelet stage occurs. Terminal spikelet is at the end of the SpikeletDifferentaiation phase which is preceeded by the Emerging and Vernalising phases. The mechanisums for progress through each of these phase are described below", "Name": "Memo", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.SubDailyInterpolation, Models", "agregationMethod": 0, "Name": "ThermalTime", "ResourceName": null, "Children": [ { "$type": "Models.Functions.XYPairs, Models", "X": [ 0, 26, 37 ], "Y": [ 0, 26, 0 ], "XVariableName": null, "Name": "Response", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Memo, Models", "Text": "Thermal time determines the rate of developmental progress through many of the crops phases and is used by organs to determing potential growth rates.", "Name": "Memo", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.ThreeHourAirTemperature, Models", "TempRangeFactors": null, "Name": "InterpolationMethod", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.PhotoperiodFunction, Models", "Twilight": -6, "DayLength": 0, "Name": "Photoperiod", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.AccumulateFunction, Models", "StartStageName": "Emergence", "EndStageName": "FlagLeaf", "ResetStageName": null, "FractionRemovedOnCut": 0, "FractionRemovedOnHarvest": 0, "FractionRemovedOnGraze": 0, "FractionRemovedOnPrune": 0, "Name": "HaunStage", "ResourceName": null, "Children": [ { "$type": "Models.Functions.PhaseLookup, Models", "Name": "Delta", "ResourceName": null, "Children": [ { "$type": "Models.Functions.PhaseLookupValue, Models", "Start": "Germination", "End": "HarvestRipe", "Name": "Growing", "ResourceName": null, "Children": [ { "$type": "Models.Functions.DivideFunction, Models", "Name": "Value", "ResourceName": null, "Children": [ { "$type": "Models.Functions.VariableReference, Models", "VariableName": "[Phenology].ThermalTime", "Name": "ThermalTime", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.VariableReference, Models", "VariableName": "[Phenology].Phyllochron", "Name": "Phyllochron", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.MultiplyFunction, Models", "Name": "Phyllochron", "ResourceName": null, "Children": [ { "$type": "Models.Memo, Models", "Text": "This is the thermal time between the emergence of leaf tips. The model used here is based on [Jamieson_SIRIUS_1998] where leaf appearace could be described by a base phyllochron determined between leaves 2 and 7 and a phyllochron that was 70% of base phyllochron for leaves < 2 and 130% of base phyllochron for leaves > 7", "Name": "Rational", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.LinearInterpolationFunction, Models", "Name": "LeafStageFactor", "ResourceName": null, "Children": [ { "$type": "Models.Functions.XYPairs, Models", "X": [ 0, 2, 3, 7, 8, 11 ], "Y": [ 0.75, 0.75, 1, 1, 1.4, 1.4 ], "XVariableName": null, "Name": "XYPairs", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.VariableReference, Models", "VariableName": "[Leaf].AppearedCohortNo", "Name": "XValue", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.Constant, Models", "FixedValue": 120, "Units": "oC.d", "Name": "BasePhyllochron", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.AddFunction, Models", "Name": "PhotoperiodEffect", "ResourceName": null, "Children": [ { "$type": "Models.Functions.Constant, Models", "FixedValue": 1, "Units": "oC.d", "Name": "One", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.MultiplyFunction, Models", "Name": "PhotoperiodResponse", "ResourceName": null, "Children": [ { "$type": "Models.Functions.VariableReference, Models", "VariableName": "[Phenology].PhyllochronPpSensitivity", "Name": "PhotoperiodSensitivity", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.LinearInterpolationFunction, Models", "Name": "PhotoPeriodResponseShape", "ResourceName": null, "Children": [ { "$type": "Models.Functions.XYPairs, Models", "X": [ 8, 12, 20 ], "Y": [ 1, 0, 0 ], "XVariableName": null, "Name": "XYPairs", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.VariableReference, Models", "VariableName": "[Phenology].Photoperiod", "Name": "XValue", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.VariableReference, Models", "VariableName": "[Phenology].CAMP.FLN", "Name": "FinalLeafNumber", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.Constant, Models", "FixedValue": 2, "Units": null, "Name": "HeadEmergencePpSensitivity", "ResourceName": null, "Children": [ { "$type": "Models.Memo, Models", "Text": "The phyllochrons duration for the plant to go from flag leaf ligual appearance at 16 h Pp compared to the phyllochron duration for the same phase at 8 h Pp. ", "Name": "Memo", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.Constant, Models", "FixedValue": 200, "Units": null, "Name": "HeadEmergenceLongDayBase", "ResourceName": null, "Children": [ { "$type": "Models.Memo, Models", "Text": "The phyllochrons duration for the plant to go from flag leaf ligual appearance at 16 h Pp.", "Name": "Memo", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false }, { "$type": "Models.PMF.Phen.GerminatingPhase, Models", "Start": "Sowing", "End": "Germination", "Name": "Germinating", "ResourceName": null, "Children": [ { "$type": "Models.Functions.Constant, Models", "FixedValue": 0.0, "Units": null, "Name": "MinSoilTemperature", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false }, { "$type": "Models.PMF.Phen.EmergingPhase, Models", "Start": "Germination", "End": "Emergence", "TTForTimeStep": 0, "Name": "Emerging", "ResourceName": null, "Children": [ { "$type": "Models.Functions.VariableReference, Models", "VariableName": "[Phenology].ThermalTime", "Name": "ThermalTime", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.AddFunction, Models", "Name": "Target", "ResourceName": null, "Children": [ { "$type": "Models.Functions.Constant, Models", "FixedValue": 40, "Units": null, "Name": "ShootLag", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.MultiplyFunction, Models", "Name": "DepthxRate", "ResourceName": null, "Children": [ { "$type": "Models.Functions.VariableReference, Models", "VariableName": "[Plant].SowingData.Depth", "Name": "SowingDepth", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.Constant, Models", "FixedValue": 1.5, "Units": null, "Name": "ShootRate", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false }, { "$type": "Models.PMF.Phen.VernalisationPhase, Models", "Start": "Emergence", "End": "VernalSaturation", "Name": "Vernalising", "ResourceName": null, "Children": [ { "$type": "Models.Memo, Models", "Text": "Progress through the vernalising phase is determined by the apparent expression of Vrn1 and Vrn2 genes. The CAMP model predicts the expression of these two genes. \nVrn1 is the gene that orchestrates cold temperature responses in development. To complete the vernalising stage firstly apparent Vrn1 expression must reach a value of at least 1.0. In warm temperatures (>18oC), Vrn1 is expressed at a base rate that is genotype dependent. This base rate is lower for vernalisation sensitive genotypes which will develop slower in the warm. Vrn1 expression (relative to Haun stage increment) increases as temperature decreases so exposure to cold conditions will cause vernalisation sensitive varieties to develop faster (i.e. reach vernalisation at a lower Haun stage). Vrn2 is up-regulated by longer photoperiods. It blocks the expression of Vrn3 (which is required for progression through the spikelet differentiation phase) and must be down regulated completely before the vernalising phase is complete. Vrn1 blocks Vrn2 expression so in effect the expression of Vrn2 raises the target for Vrn1 expression above 1.0. The longer the photoperiod the greater the target increase so exposure to short days will reduce the target and length of the vernalising phase, a phenomena some times called short day vernalisation. Vrn3 may also be active and accelerate the expression of Vrn1 during the vernalisation phase. This effect is currently captured by VrnX in CAMP. \nThe duration of the vernalising phase will be the result of a complex interaction between temperature, photoperiod and the genotypes tendency to express Vrn1 at warm temperatures (baseDeltaVrn1) and Vrn2 and Vrn3 under long photoperiods (MaxDpVrn2, MaxDVrnX). These three rates are derived internally by the CAMP model from the genotypes FLNparams.", "Name": "Memo", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false }, { "$type": "Models.PMF.Phen.GenericPhase, Models", "Start": "VernalSaturation", "End": "TerminalSpikelet", "Name": "SpikeletDifferentiation", "ResourceName": null, "Children": [ { "$type": "Models.Functions.VariableReference, Models", "VariableName": "[Phenology].CAMP.dVrn", "Name": "Progression", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.Constant, Models", "FixedValue": 1, "Units": null, "Name": "Target", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Memo, Models", "Text": "Progress through the Spike differentiation phase is determined by the apparent expression of Vrn3 as predicted by CAMP. \nVrn3 is a photoperiod sensitive gene that promotes expression of Vrn1. Vrn1 is not able to express to adequate levels to achieve reproductive transition without Vrn3 upregulation. Here we assume an apparent Vrn3 expression of 1.0 is sufficient to upregulate Vrn1 enough to trigger terminal spikelet. \n Each genotype has a base rate of Vrn3 expression (baseDVrn3) at low photoperiods and a maximum rate of Vrn3 expression (maxDVrn3) under long photoperiods. These two rates are derived internally by the CAMP model from the genotypes FLNparams. ", "Name": "Memo", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false } ], "Enabled": true, "ReadOnly": false }, { "$type": "Models.PMF.Phen.LeafAppearancePhase, Models", "Start": "TerminalSpikelet", "End": "FlagLeaf", "Name": "StemElongation", "ResourceName": null, "Children": [ { "$type": "Models.Memo, Models", "Text": "The Final leaf number is fixed at Terminal Spikelet and leaves contune to appear at a rate set by thermal time and phyllochron until flag leaf liguale appears and this phase is completed.", "Name": "Memo", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.VariableReference, Models", "VariableName": "[Phenology].ThermalTime", "Name": "ThermalTime", "ResourceName": null, "Children": [], "Enabled": true, "ReadOnly": false }, { "$type": "Models.Functions.VariableReference, Models", "VariableName": "[Structure].FinalLeafNumber", "Name": "FinalLeafNumber", "ResourceName": null, "Children": [], 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model was derived to integrate molecular and physiological models of cereal flowering time to better capture G x E x M interactions and to provide a framework for linking genetic data to field behaviour. It calculates the current levels of expression of Vrn1, 2 and 3 genes from daily deltas that are all calculated relative to haun stage deltas in addition to temperature (Vrn1) and photoperiod (Vrn 2 and 3). To reach the vernalisation stage Vrn1 must be upregulated to a value of at least 1.0. Where Vrn2 is also being expressed the target for Vrn1 expression increases in parallel as more Vrn1 expression is needed to block Vrn2 and allow Vrn3 expression. Once Vrn2 expression is blocked Vrn3 will be upregulated and terminal spikelet occurs when its apparent expression reaches 1.0. CAMP also predicts expression of VrnX which represents the relative contributions of Vrn2 and Vrn3 prior to vernalisation. The genotype specific rates of gene expression are derived from final leaf number parameters (FLNparams): \n\nMinLN - The final leaf number (FLN) of the genotype when fully vernalised early and grown under long (>=16) photoperiod following vernalisation (FLN_LV). These conditions maximise the expression of vernalisation and photoperiod genes and this parameter provides a measure of inherent earliness of the genotype. It may vary between 5 and 15 leaves (7 is typical). \n\nPpLN - The difference between MinLN and the FLN of a genotype when fully vernalised early and grown under short (<=8h) photoperiod following vernalisation (FLN_SV). These conditions maximise Vrn1 expression but minimise Vrn2 and 3 expression and PpLN provides a measure of photoperiod sensitivity of the genotype. It may vary between 0 and 8 leaves with 1 being typical of a low sensitivity genotype and 4 being typical of a high sensitivity genotype. \n\nVrnLN - The difference between MinLN and the FLN – PpLN of the genotype when not vernalised and grown under short photoperiod (FLN_SN). These conditions minimise Vrn and Pp gene expression to base (minimal) values and VrnLN is a measure of vernalisation sensitivity of the genotype. It may vary between 0 and 9 leaves with 1 being typical for an insensitive variety and 5 being typical for a sensitive variety. \n\nVxPLN - The difference between MinLN + VrnLN and the FLN of the genotype when not vernalised and grown under long photoperiod (FLN_LN). These conditions minimise upregulation of Vrn1 and maximise upregulation of Vrn2 and 3 and this parameter provides a measure of the relative activities of Vrn2 and Vrn3 during the vernalisation phase. A positive value shows short days accelerate vernalisation and a negative value shows short days slow vernalisation. 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