171 lines
6.6 KiB
Plaintext
171 lines
6.6 KiB
Plaintext
//
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// ********************************************************************
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// * License and Disclaimer *
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// * *
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// * The Geant4 software is copyright of the Copyright Holders of *
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// * the Geant4 Collaboration. It is provided under the terms and *
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// * conditions of the Geant4 Software License, included in the file *
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// * LICENSE and available at http://cern.ch/geant4/license . These *
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// * include a list of copyright holders. *
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// * *
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// * Neither the authors of this software system, nor their employing *
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// * institutes,nor the agencies providing financial support for this *
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// * work make any representation or warranty, express or implied, *
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// * regarding this software system or assume any liability for its *
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// * use. Please see the license in the file LICENSE and URL above *
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// * for the full disclaimer and the limitation of liability. *
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// * *
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// * This code implementation is the result of the scientific and *
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// * technical work of the GEANT4 collaboration. *
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// * By using, copying, modifying or distributing the software (or *
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// * any work based on the software) you agree to acknowledge its *
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// * use in resulting scientific publications, and indicate your *
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// * acceptance of all terms of the Geant4 Software license. *
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// ********************************************************************
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//
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//
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// $Id: G4DNAProcess.icc,v 1.11 2007/12/10 16:31:19 gunter Exp $
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// GEANT4 tag $Name: geant4-09-02 $
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//
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// Contact Author: Maria Grazia Pia (Maria.Grazia.Pia@cern.ch)
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//
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// Reference: TNS Geant4-DNA paper
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//
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// History:
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// -----------
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// Date Name Modification
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// 28 Apr 2007 M.G. Pia Created in compliance with design described in TNS paper
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//
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// -------------------------------------------------------------------
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template <class TCrossSection,class TFinalState>
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G4double G4DNAProcess<TCrossSection,TFinalState>::GetMeanFreePath(const G4Track& track,
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G4double /* previousStepSize */,
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G4ForceCondition* /* condition */)
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{
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G4double meanFreePath = DBL_MAX;
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// Assume the interacting medium to be water; one of the elements must be oxygen
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G4Material* material(track.GetMaterial());
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size_t i = material->GetNumberOfElements();
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while (i>0)
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{
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i--;
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const G4Element* element(material->GetElement(i));
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if (element->GetZ() == 8.)
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{
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// Number of oxygen atoms per volume = number of water molecules per volume
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G4double density = material->GetAtomicNumDensityVector()[i];
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// G4cout << "density = " << density << G4endl;
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if (density > 0.)
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{
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G4double cross = crossSection.CrossSection(track);
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if (cross > 0.0) meanFreePath = 1. / (density*cross);
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if (meanFreePath == 0.) meanFreePath = DBL_MIN;
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return meanFreePath;
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}
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}
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} // end while
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// If it ends up here, it means that the material is not water
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G4Exception("G4DNAProcess::GetMeanFreePath - material is not water");
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// One does not really need a return statement here
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return DBL_MAX;
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}
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template <class TCrossSection,class TFinalState>
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G4VParticleChange* G4DNAProcess<TCrossSection,TFinalState>::PostStepDoIt(const G4Track& track, const G4Step& step)
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{
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aParticleChange.Initialize(track);
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// G4cout << "Track initialized" << G4endl;
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// Interaction product
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const G4FinalStateProduct& product = finalState.GenerateFinalState(track,step);
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// Number of secondary products to be generated
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G4int nSecondaries = product.NumberOfSecondaries();
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aParticleChange.SetNumberOfSecondaries(nSecondaries);
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// Secondaries
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for (G4int l = 0; l<nSecondaries; l++ )
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{
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G4DynamicParticle* particle = product.GetSecondaries()[l];
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if (particle != 0)
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{
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// aParticleChange.SetNumberOfSecondaries(nSecondaries);
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aParticleChange.AddSecondary(particle);
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}
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}
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// Take care of incident particle to be killed, if necessary; dump its energy deposit locally
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G4double deposit = product.GetEnergyDeposit();
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if (deposit > 0.0) aParticleChange.ProposeLocalEnergyDeposit(deposit);
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if (product.PrimaryParticleIsKilled())
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{
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aParticleChange.ProposeTrackStatus(fStopAndKill);
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aParticleChange.ProposeEnergy(0.);
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aParticleChange.ProposeMomentumDirection( 0., 0., 0. );
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aParticleChange.ProposeLocalEnergyDeposit(track.GetKineticEnergy() + deposit);
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}
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else
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{
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// Modify incident particle kinematics taking into account the generated products
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// ---- MGP ---- Temporary: assume at most one secondary product
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// Sebastien: please check if consistent with current models or generalize
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// Primary particle momentum and kinetic energy
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G4ThreeVector primaryMomentum = track.GetMomentum();
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G4double primaryKineticEnergy = track.GetKineticEnergy();
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// Secondary product momentum and energy
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G4double secondaryKineticEnergy = 0.;
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if (nSecondaries >0 )
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{
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G4DynamicParticle* secondary = product.GetSecondaries()[0];
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secondaryKineticEnergy = secondary->GetKineticEnergy();
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// Calculate new primary particle kinetic energy
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G4double finalKineticEnergy = primaryKineticEnergy - secondaryKineticEnergy - deposit;
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if (finalKineticEnergy <= 0.0)
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{
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// Primary particle is stopped; kill it
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aParticleChange.ProposeTrackStatus(fStopAndKill);
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aParticleChange.ProposeEnergy(0.);
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aParticleChange.ProposeMomentumDirection( 0., 0., 0. );
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}
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else
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{
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// Calculate new primary particle momentum: difference between original primary one and secondary
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G4ThreeVector secondaryMomentum = secondary->GetMomentum();
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G4ThreeVector finalMomentum = primaryMomentum - secondaryMomentum;
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G4ThreeVector finalDirection = finalMomentum.unit();
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aParticleChange.ProposeMomentumDirection(finalDirection);
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aParticleChange.ProposeEnergy(finalKineticEnergy);
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}
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}
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else
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{
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// Check whether primary particle is modified
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if (product.PrimaryParticleIsModified())
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{
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G4ThreeVector finalDirection = product.GetModifiedDirection();
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aParticleChange.ProposeMomentumDirection(finalDirection);
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G4double finalKineticEnergy = product.GetModifiedEnergy();
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aParticleChange.ProposeEnergy(finalKineticEnergy);
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}
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}
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}
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return G4VDiscreteProcess::PostStepDoIt(track,step );
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}
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