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geant4/source/processes/electromagnetic/lowenergy/include/G4LowEnergyGammaConversion.icc
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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: G4LowEnergyGammaConversion.icc,v 1.6.8.1 1999/12/07 20:50:20 gunter Exp $
// GEANT4 tag $Name: geant4-01-00 $
//
//
// ---------------------------------------------------------------
// GEANT 4 class inlined methods file
//
// For information related to this code contact:
// CERN, CN Division, ASD group
// History: first implementation, based on object model of
// 2nd December 1995, G.Cosmo
// ------------ G4LowEnergyGammaConversion physics process ---------
// by Michel Maire, 24 May 1996
// ***************************************************************
// 11-06-96, in GetMeanFreePath() the partial sum is stored, by M.Maire
// 16-09-96, dynamical array PartialSumSigma, by M.Maire
// 13-12-96, Sign corrected in the ScreenFunctions, by L.Urban
// 14-01-97, crossection table + meanfreepath table.
// PartialSumSigma removed, by M.Maire
// 14-01-97, new physics scheme for geant4alpha, M.Maire
// ---------------------------------------------------------------
inline G4bool G4LowEnergyGammaConversion::IsApplicable(const G4ParticleDefinition& particle)
{
return ( &particle == G4Gamma::Gamma() );
}
inline G4double
G4LowEnergyGammaConversion::GetMeanFreePath(const G4Track& aTrack, G4double, G4ForceCondition*){
// returns the gamma mean free path in GEANT4 internal units
const G4DynamicParticle* aDynamicGamma = aTrack.GetDynamicParticle();
G4double GammaEnergy = aDynamicGamma->GetKineticEnergy();
G4Material* aMaterial = aTrack.GetMaterial();
G4bool isOutRange ;
if (GammaEnergy < LowestEnergyLimit){
MeanFreePath = DBL_MAX;
}
else {
if(GammaEnergy > HighestEnergyLimit) GammaEnergy = 0.99*HighestEnergyLimit;
MeanFreePath = util.DataLogInterpolation(GammaEnergy, aMaterial->GetIndex(), theMeanFreePathTable);
}
return MeanFreePath;
}
inline G4double
G4LowEnergyGammaConversion::ScreenFunction1(G4double ScreenVariable)
// compute the value of the screening function 3*PHI1 - PHI2
{
G4double screenVal;
if (ScreenVariable > 1.)
screenVal = 42.24 - 8.368*log(ScreenVariable+0.952);
else
screenVal = 42.392 - ScreenVariable* (7.796 - 1.961*ScreenVariable);
return screenVal;
}
inline G4double
G4LowEnergyGammaConversion::ScreenFunction2(G4double ScreenVariable)
// compute the value of the screening function 1.5*PHI1 - 0.5*PHI2
{
G4double screenVal;
if (ScreenVariable > 1.)
screenVal = 42.24 - 8.368*log(ScreenVariable+0.952);
else
screenVal = 41.405 - ScreenVariable* (5.828 - 0.8945*ScreenVariable);
return screenVal;
}