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geant4/source/processes/electromagnetic/standard/include/G4SynchrotronRadiation.hh
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2016-06-08 15:28:20 +02:00

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// This code implementation is the intellectual property of
// the GEANT4 collaboration.
//
// By copying, distributing or modifying the Program (or any work
// based on the Program) you indicate your acceptance of this statement,
// and all its terms.
//
// $Id: G4SynchrotronRadiation.hh,v 1.1.10.1 1999/12/07 20:50:51 gunter Exp $
// GEANT4 tag $Name: geant4-01-00 $
//
// ------------------------------------------------------------
// GEANT 4 class header file
// CERN Geneva Switzerland
//
// For information related to this code contact:
// CERN, IT Division, ASD group
//
// History:
// 21-5-98 1 version , V. Grichine
//
//
//
// ------------------------------------------------------------
#ifndef G4SynchrotronRadiation_h
#define G4SynchrotronRadiation_h 1
#include "G4ios.hh"
#include "globals.hh"
#include "Randomize.hh"
#include "G4VDiscreteProcess.hh"
#include "G4TransportationManager.hh"
#include "G4FieldManager.hh"
#include "G4Field.hh"
#include "G4ThreeVector.hh"
#include "G4Track.hh"
#include "G4Step.hh"
#include "G4Gamma.hh"
#include "G4Electron.hh"
#include "G4Positron.hh"
#include "G4OrderedTable.hh"
#include "G4PhysicsTable.hh"
#include "G4PhysicsLogVector.hh"
class G4SynchrotronRadiation : public G4VDiscreteProcess
{
public:
G4SynchrotronRadiation(const G4String& processName =
"SynchrotronRadiation");
~G4SynchrotronRadiation();
private:
G4SynchrotronRadiation & operator=(const G4SynchrotronRadiation &right);
G4SynchrotronRadiation(const G4SynchrotronRadiation&);
public: ///////////////// Post Step functions //////////////////////////
G4double GetMeanFreePath( const G4Track& track,
G4double previousStepSize,
G4ForceCondition* condition ) ;
G4VParticleChange *PostStepDoIt( const G4Track& track,
const G4Step& Step ) ;
G4double GetPhotonEnergy( const G4Track& trackData,
const G4Step& stepData ) ;
G4bool IsApplicable(const G4ParticleDefinition&);
static G4double GetLambdaConst() { return fLambdaConst ; } ;
static G4double GetEnergyConst() { return fEnergyConst ; } ;
protected:
private:
static const G4double fLambdaConst ;
static const G4double fEnergyConst ;
static const G4double fIntegralProbabilityOfSR[200] ;
const G4double
LowestKineticEnergy; // low energy limit of the cross-section formula
const G4double
HighestKineticEnergy; // high energy limit of the cross-section formula
G4int TotBin; // number of bins in the tables
G4double CutInRange;
const G4Gamma* theGamma;
const G4Electron* theElectron;
const G4Positron* thePositron;
const G4double* GammaCutInKineticEnergy;
const G4double* ElectronCutInKineticEnergy;
const G4double* PositronCutInKineticEnergy;
const G4double* ParticleCutInKineticEnergy;
G4double GammaCutInKineticEnergyNow;
G4double ElectronCutInKineticEnergyNow;
G4double PositronCutInKineticEnergyNow;
G4double ParticleCutInKineticEnergyNow;
};
////////////////////////// INLINE METHODS /////////////////////////////
//
// gives the MeanFreePath in GEANT4 internal units
//
inline G4double
G4SynchrotronRadiation::GetMeanFreePath( const G4Track& trackData,
G4double previousStepSize,
G4ForceCondition* condition)
{
const G4DynamicParticle* aDynamicParticle;
G4Material* aMaterial;
G4double MeanFreePath;
G4bool isOutRange ;
*condition = NotForced ;
aDynamicParticle = trackData.GetDynamicParticle();
aMaterial = trackData.GetMaterial();
G4double gamma = aDynamicParticle->GetTotalEnergy()/
(aDynamicParticle->GetMass() ) ;
G4double KineticEnergy = aDynamicParticle->GetKineticEnergy();
if (KineticEnergy < LowestKineticEnergy || gamma<1.0e3)
{
MeanFreePath = DBL_MAX ;
}
else
{
G4TransportationManager* transportMgr;
G4FieldManager* globalFieldMgr;
transportMgr = G4TransportationManager::GetTransportationManager() ;
globalFieldMgr = transportMgr->GetFieldManager() ;
G4bool FieldExists = globalFieldMgr->DoesFieldExist() ;
G4ThreeVector FieldValue;
G4Field* pField = 0 ;
if (FieldExists)
{
pField = globalFieldMgr->GetDetectorField() ;
G4ThreeVector globPosition = trackData.GetPosition() ;
G4double globPosVec[3], FieldValueVec[3] ;
globPosVec[0] = globPosition.x() ;
globPosVec[1] = globPosition.y() ;
globPosVec[2] = globPosition.z() ;
pField->GetFieldValue( globPosVec, FieldValueVec ) ;
FieldValue = G4ThreeVector( FieldValueVec[0],
FieldValueVec[1],
FieldValueVec[2] ) ;
G4ThreeVector unitMomentum = aDynamicParticle->GetMomentumDirection();
G4ThreeVector unitMcrossB = FieldValue.cross(unitMomentum) ;
G4double perpB = unitMcrossB.mag() ;
G4double beta = aDynamicParticle->GetTotalMomentum()/
(aDynamicParticle->GetTotalEnergy() ) ;
if(perpB > 0.0)
{
MeanFreePath = fLambdaConst*beta/perpB ;
}
else
{
MeanFreePath = DBL_MAX ;
}
}
else
{
MeanFreePath = DBL_MAX ;
}
}
return MeanFreePath;
}
inline G4bool
G4SynchrotronRadiation::IsApplicable( const G4ParticleDefinition& particle )
{
return( (&particle == (const G4ParticleDefinition *)theElectron)
||(&particle == (const G4ParticleDefinition *)thePositron)
) ;
}
#endif // end of G4SynchrotronRadiation.hh