Import Geant4 4.0.0 source tree
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@@ -21,117 +21,151 @@
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// ********************************************************************
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//
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//
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// $Id: G4hIonisation.hh,v 1.10.4.2 2001/06/28 20:19:49 gunter Exp $
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// GEANT4 tag $Name: $
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// $Id: G4hIonisation.hh,v 1.17 2001/11/09 13:56:28 maire Exp $
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// GEANT4 tag $Name: geant4-04-00 $
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//
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//
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// ------------------------------------------------------------
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// GEANT 4 class header file
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// --------------- G4hIonisation physics process -------------------------------
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// by Laszlo Urban, 30 May 1997
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// -----------------------------------------------------------------------------
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//
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// History: based on object model of
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// 2nd December 1995, G.Cosmo
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// ---------- G4hIonisation physics process -----------
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// by Laszlo Urban, 30 May 1997
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// ************************************************************
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// It is the first implementation of the NEW IONISATION
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// PROCESS. ( delta rays + continuous energy loss)
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// It calculates the ionisation for charged hadrons.
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// ************************************************************
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// corrected by L.Urban on 24/09/97
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// corrected by L.Urban on 13/01/98
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// bugs fixed by L.Urban on 02/02/99
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// 10/02/00 modifications , new e.m. structure, L.Urban
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// ------------------------------------------------------------
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// 10/02/00 modifications , new e.m. structure, L.Urban
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// 10-08-01 new methods Store/Retrieve PhysicsTable (mma)
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// 14-08-01 new function ComputeRestrictedMeandEdx() + 'cleanup' (mma)
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// 19-09-01 come back to previous process name "hIoni"
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// 29-10-01 all static functions no more inlined
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//
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// -----------------------------------------------------------------------------
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// Class description
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//
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// This class manages the ionisation process for hadrons.
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// it inherites from G4VContinuousDiscreteProcess via G4VhEnergyLoss.
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//
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// Class description - end
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
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#ifndef G4hIonisation_h
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#define G4hIonisation_h 1
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#include "G4ios.hh"
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#include "globals.hh"
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#include "Randomize.hh"
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#include "G4VhEnergyLoss.hh"
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#include "globals.hh"
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#include "G4Track.hh"
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#include "G4Step.hh"
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#include "G4Electron.hh"
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#include "G4PhysicsLogVector.hh"
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#include "G4PhysicsLinearVector.hh"
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
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class G4hIonisation : public G4VhEnergyLoss
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{
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public:
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public: // with description
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G4hIonisation(const G4String& processName = "hIoni");
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G4hIonisation(const G4String& processName = "hIoni");
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~G4hIonisation();
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~G4hIonisation();
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G4bool IsApplicable(const G4ParticleDefinition&);
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// return true for charged particles, false otherwise
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void BuildPhysicsTable(const G4ParticleDefinition& aParticleType);
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virtual void BuildLossTable(const G4ParticleDefinition& aParticleType);
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// this function overloads a virtual function of the base class.
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// It is invoked by the G4ParticleWithCuts::SetCut() method.
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// It invokes BuildLambdaTable(), BuildLossTable(), BuildDEDXTable()
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void BuildLossTable(const G4ParticleDefinition& aParticleType);
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// build the dE/dx tables due to the ionisation, for every materials.
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// (restricted stopping power, Bethe-Bloch formula)
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void BuildLambdaTable(const G4ParticleDefinition& aParticleType);
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// build mean free path tables for the delta rays production.
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// the tables are built for every materials.
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G4bool StorePhysicsTable(G4ParticleDefinition* ,
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const G4String& directory, G4bool);
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// store eLoss and MeanFreePath tables into an external file
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// specified by 'directory' (must exist before invokation)
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G4bool RetrievePhysicsTable(G4ParticleDefinition* ,
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const G4String& directory, G4bool);
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// retrieve eLoss and MeanFreePath tables from an external file
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// specified by 'directory'
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virtual void PrintInfoDefinition();
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G4double GetMeanFreePath(
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const G4Track& track,
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// Print few lines of informations about the process: validity range,
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// origine ..etc..
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// Invoked by BuildPhysicsTable().
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G4double GetMeanFreePath(const G4Track& track,
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G4double previousStepSize,
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G4ForceCondition* condition ) ;
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G4ForceCondition* condition );
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// It returns the MeanFreePath of the process for the current track :
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// (energy, material)
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// The previousStepSize and G4ForceCondition* are not used.
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// This function overloads a virtual function of the base class.
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// It is invoked by the ProcessManager of the Particle.
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G4VParticleChange *PostStepDoIt(const G4Track& track,
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const G4Step& Step ) ;
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const G4Step& Step );
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// It computes the final state of the process (at end of step),
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// returned as a ParticleChange object.
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// This function overloads a virtual function of the base class.
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// It is invoked by the ProcessManager of the Particle.
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protected:
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virtual G4double ComputeMicroscopicCrossSection(
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protected: // with description
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virtual G4double ComputeRestrictedMeandEdx(
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const G4ParticleDefinition& aParticleType,
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G4double KineticEnergy,
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G4double AtomicNumber);
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const G4Material* material,
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G4double DeltaThreshold);
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// computes restricted mean dE/dx in Geant4 internal units.
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virtual G4double ComputeCrossSectionPerAtom(
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const G4ParticleDefinition& aParticleType,
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G4double KineticEnergy,
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G4double AtomicNumber,
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G4double DeltaThreshold);
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// computes total cross section per atom in Geant4 internal units.
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protected:
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G4PhysicsTable* theMeanFreePathTable;
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private:
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// hide assignment operator
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// hide assignment operator
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G4hIonisation & operator=(const G4hIonisation &right);
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G4hIonisation(const G4hIonisation&);
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private:
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// private data members ...............................
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// G4PhysicsTable* theMeanFreePathTable;
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static G4double LowerBoundLambda; // bining for lambda table
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static G4double UpperBoundLambda;
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static G4int NbinLambda;
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G4double LowestKineticEnergy; // binning for dE/dx table
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G4double HighestKineticEnergy;
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G4int TotBin;
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G4double Tmincut; // min energy of d-rays
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// particles , cuts in kinetic energy ........
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const G4Electron* theElectron;
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const G4Proton* theProton;
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const G4AntiProton* theAntiProton;
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const G4double* DeltaCutInKineticEnergy ;
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G4double DeltaCutInKineticEnergyNow ;
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static G4double Tmincut ;
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static G4double LowerBoundLambda ; // bining for lambda table
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static G4double UpperBoundLambda ;
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static G4int NbinLambda ;
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G4double LowestKineticEnergy,HighestKineticEnergy ;
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G4int TotBin ;
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public:
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static void SetLowerBoundLambda(G4double val) {LowerBoundLambda = val;};
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static void SetUpperBoundLambda(G4double val) {UpperBoundLambda = val;};
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static void SetNbinLambda(G4int n) {NbinLambda = n;};
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static G4double GetLowerBoundLambda() { return LowerBoundLambda;};
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static G4double GetUpperBoundLambda() { return UpperBoundLambda;};
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static G4int GetNbinLambda() {return NbinLambda;};
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public: // with description
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static void SetLowerBoundLambda(G4double val);
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static void SetUpperBoundLambda(G4double val);
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static void SetNbinLambda(G4int n);
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// set the parameters of the mean free path table.
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static G4double GetLowerBoundLambda();
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static G4double GetUpperBoundLambda();
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static G4int GetNbinLambda();
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// get the parameters of the mean free path table.
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};
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//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
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#include "G4hIonisation.icc"
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#endif
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