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Please see the license in the file LICENSE and URL above * // * for the full disclaimer and the limitation of liability. * // * * // * This code implementation is the result of the scientific and * // * technical work of the GEANT4 collaboration. * // * By using, copying, modifying or distributing the software (or * // * any work based on the software) you agree to acknowledge its * // * use in resulting scientific publications, and indicate your * // * acceptance of all terms of the Geant4 Software license. * // ******************************************************************** // // // ------------------------------------------------------------------- // // GEANT4 Class file // // // File name: G4eCoulombScatteringModel // // Author: Vladimir Ivanchenko // // Creation date: 22.08.2005 // // Modifications: V.Ivanchenko // // // // Class Description: // // ------------------------------------------------------------------- // //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.... //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.... #include "G4eCoulombScatteringModel.hh" #include "G4PhysicalConstants.hh" #include "G4SystemOfUnits.hh" #include "Randomize.hh" #include "G4DataVector.hh" #include "G4ElementTable.hh" #include "G4ParticleChangeForGamma.hh" #include "G4Proton.hh" #include "G4ParticleTable.hh" #include "G4IonTable.hh" #include "G4ProductionCutsTable.hh" #include "G4NucleiProperties.hh" #include "G4Pow.hh" #include "G4LossTableManager.hh" #include "G4LossTableBuilder.hh" #include "G4NistManager.hh" //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.... using namespace std; G4eCoulombScatteringModel::G4eCoulombScatteringModel(G4bool combined) : G4VEmModel("eCoulombScattering"), cosThetaMin(1.0), cosThetaMax(-1.0), isCombined(combined) { fParticleChange = nullptr; fNistManager = G4NistManager::Instance(); theIonTable = G4ParticleTable::GetParticleTable()->GetIonTable(); theProton = G4Proton::Proton(); currentMaterial = nullptr; fixedCut = -1.0; pCuts = nullptr; recoilThreshold = 0.0; // by default does not work particle = nullptr; currentCouple = nullptr; wokvi = new G4WentzelOKandVIxSection(isCombined); currentMaterialIndex = 0; mass = CLHEP::proton_mass_c2; elecRatio = 0.0; } //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.... G4eCoulombScatteringModel::~G4eCoulombScatteringModel() { delete wokvi; } //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.... void G4eCoulombScatteringModel::Initialise(const G4ParticleDefinition* part, const G4DataVector& cuts) { SetupParticle(part); currentCouple = nullptr; // defined theta limit between single and multiple scattering if(isCombined) { cosThetaMin = 1.0; G4double tet = PolarAngleLimit(); if(tet >= pi) { cosThetaMin = -1.0; } else if(tet > 0.0) { cosThetaMin = cos(tet); } } wokvi->Initialise(part, cosThetaMin); pCuts = &cuts; /* G4cout << "G4eCoulombScatteringModel::Initialise for " << part->GetParticleName() << " 1-cos(TetMin)= " << 1.0 - cosThetaMin << " 1-cos(TetMax)= " << 1. - cosThetaMax << G4endl; G4cout << "cut[0]= " << (*pCuts)[0] << G4endl; */ if(!fParticleChange) { fParticleChange = GetParticleChangeForGamma(); } if(IsMaster() && mass < GeV && part->GetParticleName() != "GenericIon") { InitialiseElementSelectors(part, cuts); } } //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... void G4eCoulombScatteringModel::InitialiseLocal(const G4ParticleDefinition*, G4VEmModel* masterModel) { SetElementSelectors(masterModel->GetElementSelectors()); } //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.... G4double G4eCoulombScatteringModel::MinPrimaryEnergy(const G4Material* material, const G4ParticleDefinition* part, G4double) { SetupParticle(part); // define cut using cuts for proton G4double cut = std::max(recoilThreshold, (*pCuts)[CurrentCouple()->GetIndex()]); // find out lightest element const G4ElementVector* theElementVector = material->GetElementVector(); G4int nelm = material->GetNumberOfElements(); // select lightest element G4int Z = 300; for (G4int j=0; jGetZasInt()); } G4int A = G4lrint(fNistManager->GetAtomicMassAmu(Z)); G4double targetMass = G4NucleiProperties::GetNuclearMass(A, Z); G4double t = std::max(cut, 0.5*(cut + sqrt(2*cut*targetMass))); return t; } //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo...... G4double G4eCoulombScatteringModel::ComputeCrossSectionPerAtom( const G4ParticleDefinition* p, G4double kinEnergy, G4double Z, G4double, G4double cutEnergy, G4double) { /* G4cout << "### G4eCoulombScatteringModel::ComputeCrossSectionPerAtom for " << p->GetParticleName()<<" Z= "< costmax) { cross = wokvi->ComputeNuclearCrossSection(costmin, costmax) + wokvi->ComputeElectronCrossSection(costmin, costmax); } /* if(p->GetParticleName() == "e-") G4cout << "Z= " << Z << " e(MeV)= " << kinEnergy/MeV << " cross(b)= " << cross/barn << " 1-costmin= " << 1-costmin << " 1-costmax= " << 1-costmax << " 1-cosThetaMax= " << 1-cosThetaMax << " " << currentMaterial->GetName() << G4endl; */ } //G4cout << "====== cross= " << cross << G4endl; return cross; } //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo.... void G4eCoulombScatteringModel::SampleSecondaries( std::vector* fvect, const G4MaterialCutsCouple* couple, const G4DynamicParticle* dp, G4double cutEnergy, G4double) { G4double kinEnergy = dp->GetKineticEnergy(); SetupParticle(dp->GetDefinition()); DefineMaterial(couple); /* G4cout << "G4eCoulombScatteringModel::SampleSecondaries e(MeV)= " << kinEnergy << " " << particle->GetParticleName() << " cut= " << cutEnergy<< G4endl; */ // Choose nucleus G4double cut = (0.0 < fixedCut) ? fixedCut : cutEnergy; wokvi->SetupKinematic(kinEnergy, currentMaterial); const G4Element* currentElement = SelectTargetAtom(couple,particle,kinEnergy, dp->GetLogKineticEnergy(),cut,kinEnergy); G4int iz = currentElement->GetZasInt(); G4double costmin = wokvi->SetupTarget(iz, cut); G4double costmax = (1 == iz && particle == theProton && cosThetaMax < 0.0) ? 0.0 : cosThetaMax; if(costmin <= costmax) { return; } G4double cross = wokvi->ComputeNuclearCrossSection(costmin, costmax); G4double ecross = wokvi->ComputeElectronCrossSection(costmin, costmax); G4double ratio = ecross/(cross + ecross); G4int ia = SelectIsotopeNumber(currentElement); G4double targetMass = G4NucleiProperties::GetNuclearMass(ia, iz); wokvi->SetTargetMass(targetMass); G4ThreeVector newDirection = wokvi->SampleSingleScattering(costmin, costmax, ratio); G4double cost = newDirection.z(); /* G4cout << "SampleSec: e(MeV)= " << kinEnergy/MeV << " 1-costmin= " << 1-costmin << " 1-costmax= " << 1-costmax << " 1-cost= " << 1-cost << " ratio= " << ratio << G4endl; */ G4ThreeVector direction = dp->GetMomentumDirection(); newDirection.rotateUz(direction); fParticleChange->ProposeMomentumDirection(newDirection); // recoil sampling assuming a small recoil // and first order correction to primary 4-momentum G4double mom2 = wokvi->GetMomentumSquare(); G4double trec = mom2*(1.0 - cost) /(targetMass + (mass + kinEnergy)*(1.0 - cost)); // the check likely not needed trec = std::min(trec, kinEnergy); G4double finalT = kinEnergy - trec; G4double edep = 0.0; /* G4cout<<"G4eCoulombScatteringModel: finalT= "<