Geant4 9.6.0
Toolkit for the simulation of the passage of particles through matter
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G4UAtomicDeexcitation.hh
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1//
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25//
26// $Id: G4UAtomicDeexcitation.cc,v 1.11
27// GEANT4 tag $Name: not supported by cvs2svn $
28//
29// -------------------------------------------------------------------
30//
31// Geant4 Header G4UAtomicDeexcitation
32//
33// Authors: Alfonso Mantero ([email protected])
34//
35// Created 22 April 2010 from old G4AtomicDeexcitation class
36//
37// Modified:
38// ---------
39//
40//
41// -------------------------------------------------------------------
42//
43// Class description:
44// Implementation of atomic deexcitation
45//
46// -------------------------------------------------------------------
47
48#ifndef G4UAtomicDeexcitation_h
49#define G4UAtomicDeexcitation_h 1
50
52#include "G4AtomicShell.hh"
53#include "globals.hh"
54#include "G4DynamicParticle.hh"
55#include <vector>
56
59class G4EmCorrections;
60class G4Material;
61
63{
64public:
65
67 virtual ~G4UAtomicDeexcitation();
68
69 //=================================================================
70 // methods that are requested to be implemented by the interface
71 //=================================================================
72
73 // initialisation methods
74 virtual void InitialiseForNewRun();
75 virtual void InitialiseForExtraAtom(G4int Z);
76
77
78 // Set threshold energy for fluorescence
80
81 // Set threshold energy for Auger electron production
83
84
85 // Get atomic shell by shell index, used by discrete processes
86 // (for example, photoelectric), when shell vacancy sampled by the model
87 virtual
90
91 // generation of deexcitation for given atom, shell vacancy and cuts
92 virtual void GenerateParticles(std::vector<G4DynamicParticle*>* secVect,
93 const G4AtomicShell*,
94 G4int Z,
95 G4double gammaCut,
96 G4double eCut);
97
98 // access or compute PIXE cross section
99 virtual
101 G4int Z,
103 G4double kinE,
104 const G4Material* mat = 0);
105
106 // access or compute PIXE cross section
107 virtual
109 G4int Z,
111 G4double kinE,
112 const G4Material* mat = 0);
113
114 //=================================================================
115 // concrete methods of the deextation class
116 //=================================================================
117
118private:
119
120 // Decides wether a radiative transition is possible and, if it is,
121 // returns the identity of the starting shell for the transition
122 G4int SelectTypeOfTransition(G4int Z, G4int shellId);
123
124 // Generates a particle from a radiative transition and returns it
125 G4DynamicParticle* GenerateFluorescence(G4int Z, G4int shellId,
126 G4int provShellId);
127
128 // Generates a particle from a non-radiative transition and returns it
129 G4DynamicParticle* GenerateAuger(G4int Z, G4int shellId);
130
131 // copy constructor and hide assignment operator
133 G4UAtomicDeexcitation & operator=(const G4UAtomicDeexcitation &right);
134
135 const G4AtomicTransitionManager* transitionManager;
136
137 // Data member which stores the shells to be filled by
138 // the radiative transition
139 G4int newShellId;
140
141 G4double minGammaEnergy;
142 G4double minElectronEnergy;
143
144 // Data member wich stores the id of the shell where is the vacancy
145 // left from the Auger electron
146 G4int augerVacancyId;
147
148 // Data member for the calculation of the proton and alpha ionisation XS
149
150 G4VhShellCrossSection* PIXEshellCS;
151 G4VhShellCrossSection* anaPIXEshellCS;
152 G4VhShellCrossSection* ePIXEshellCS;
153 G4EmCorrections* emcorr;
154
155 const G4ParticleDefinition* theElectron;
156 const G4ParticleDefinition* thePositron;
157};
158
159#endif
160
161
162
163
G4AtomicShellEnumerator
double G4double
Definition: G4Types.hh:64
int G4int
Definition: G4Types.hh:66
void SetCutForSecondaryPhotons(G4double cut)
virtual G4double GetShellIonisationCrossSectionPerAtom(const G4ParticleDefinition *, G4int Z, G4AtomicShellEnumerator shell, G4double kinE, const G4Material *mat=0)
virtual void InitialiseForExtraAtom(G4int Z)
virtual G4double ComputeShellIonisationCrossSectionPerAtom(const G4ParticleDefinition *, G4int Z, G4AtomicShellEnumerator shell, G4double kinE, const G4Material *mat=0)
virtual void GenerateParticles(std::vector< G4DynamicParticle * > *secVect, const G4AtomicShell *, G4int Z, G4double gammaCut, G4double eCut)
virtual void InitialiseForNewRun()
void SetCutForAugerElectrons(G4double cut)
virtual const G4AtomicShell * GetAtomicShell(G4int Z, G4AtomicShellEnumerator shell)