Geant4 11.1.1
Toolkit for the simulation of the passage of particles through matter
All Classes Namespaces Files Functions Variables Typedefs Enumerations Enumerator Friends Macros Pages
G4PhotonEvaporation.hh
Go to the documentation of this file.
1//
2// ********************************************************************
3// * License and Disclaimer *
4// * *
5// * The Geant4 software is copyright of the Copyright Holders of *
6// * the Geant4 Collaboration. It is provided under the terms and *
7// * conditions of the Geant4 Software License, included in the file *
8// * LICENSE and available at http://cern.ch/geant4/license . These *
9// * include a list of copyright holders. *
10// * *
11// * Neither the authors of this software system, nor their employing *
12// * institutes,nor the agencies providing financial support for this *
13// * work make any representation or warranty, express or implied, *
14// * regarding this software system or assume any liability for its *
15// * use. Please see the license in the file LICENSE and URL above *
16// * for the full disclaimer and the limitation of liability. *
17// * *
18// * This code implementation is the result of the scientific and *
19// * technical work of the GEANT4 collaboration. *
20// * By using, copying, modifying or distributing the software (or *
21// * any work based on the software) you agree to acknowledge its *
22// * use in resulting scientific publications, and indicate your *
23// * acceptance of all terms of the Geant4 Software license. *
24// ********************************************************************
25//
26//
27// -------------------------------------------------------------------
28//
29// GEANT4 class file
30//
31// CERN, Geneva, Switzerland
32//
33// File name: G4PhotonEvaporation
34//
35// Author: Vladimir Ivantchenko
36//
37// Creation date: 22 October 2015
38//
39// -------------------------------------------------------------------
40//
41// This is gamma deexcitation model based on the nuclear levels data
42//
43
44#ifndef G4PHOTONEVAPORATION_HH
45#define G4PHOTONEVAPORATION_HH 1
46
47#include "globals.hh"
49#include "G4NuclearLevelData.hh"
50#include "G4LevelManager.hh"
51#include "G4Fragment.hh"
52
53const G4int MAXDEPOINT = 10;
54const G4int MAXGRDATA = 300;
55
57
59
60public:
61
62 explicit G4PhotonEvaporation(G4GammaTransition* ptr=nullptr);
63
64 ~G4PhotonEvaporation() override;
65
66 void Initialise() override;
67
68 // one photon or e- emission
69 G4Fragment* EmittedFragment(G4Fragment* theNucleus) override;
70
71 // returns "false", emitted gamma and e- are added to the results
72 G4bool
73 BreakUpChain(G4FragmentVector* theResult, G4Fragment* theNucleus) override;
74
75 // emitted gamma, e-, and residual fragment are added to the results
76 G4FragmentVector* BreakItUp(const G4Fragment& theNucleus);
77
78 // compute emission probability for both continum and discrete cases
79 // must be called before any method above
80 G4double GetEmissionProbability(G4Fragment* theNucleus) override;
81
82 // methods for unit tests
84 G4double kinEnergy) override;
86 G4double kinEnergy) override;
87
89
91
93
94 void SetICM(G4bool) override;
95
96 void RDMForced (G4bool) override;
97
98 inline void SetVerboseLevel(G4int verbose);
99
100 inline G4int GetVacantShellNumber() const;
101
103 const G4PhotonEvaporation & operator =
104 (const G4PhotonEvaporation & right) = delete;
105
106private:
107
108 void InitialiseGRData();
109
110 G4Fragment* GenerateGamma(G4Fragment* nucleus);
111
112 inline void InitialiseLevelManager(G4int Z, G4int A);
113
114 G4NuclearLevelData* fNuclearLevelData;
115 const G4LevelManager* fLevelManager;
116 G4GammaTransition* fTransition;
117
118 // fPolarization stores polarization tensor for consecutive
119 // decays of a nucleus
120 G4NuclearPolarization* fPolarization;
121
122 G4int fVerbose;
123 G4int theZ;
124 G4int theA;
125 G4int fPoints;
126 G4int fCode;
127 G4int vShellNumber;
128 size_t fIndex;
129
130 G4int fSecID; // Creator model ID for the secondaries created by this model
131
132 static G4float GREnergy[MAXGRDATA];
133 static G4float GRWidth[MAXGRDATA];
134
135 G4double fCummProbability[MAXDEPOINT];
136
137 G4double fLevelEnergyMax;
138 G4double fExcEnergy;
139 G4double fProbability;
140 G4double fStep;
141 G4double fMaxLifeTime;
142
143 G4double fTolerance;
144
145 G4bool fICM;
146 G4bool fRDM;
147 G4bool fSampleTime;
148 G4bool fCorrelatedGamma;
149 G4bool isInitialised;
150};
151
153{
154 fVerbose = verbose;
155}
156
157inline void
158G4PhotonEvaporation::InitialiseLevelManager(G4int Z, G4int A)
159{
160 if(Z != theZ || A != theA) {
161 theZ = Z;
162 theA = A;
163 fIndex = 0;
164 fLevelManager = fNuclearLevelData->GetLevelManager(theZ, theA);
165 fLevelEnergyMax = fLevelManager ? fLevelManager->MaxLevelEnergy() : 0.0;
166 }
167}
168
170{
171 return vShellNumber;
172}
173
174#endif
std::vector< G4Fragment * > G4FragmentVector
Definition: G4Fragment.hh:65
const G4int MAXDEPOINT
const G4int MAXGRDATA
float G4float
Definition: G4Types.hh:84
double G4double
Definition: G4Types.hh:83
bool G4bool
Definition: G4Types.hh:86
int G4int
Definition: G4Types.hh:85
const G4int Z[17]
const G4double A[17]
G4double MaxLevelEnergy() const
const G4LevelManager * GetLevelManager(G4int Z, G4int A)
void RDMForced(G4bool) override
G4double GetEmissionProbability(G4Fragment *theNucleus) override
G4double GetUpperLevelEnergy(G4int Z, G4int A)
void SetICM(G4bool) override
G4double ComputeProbability(G4Fragment *theNucleus, G4double kinEnergy) override
G4double ComputeInverseXSection(G4Fragment *theNucleus, G4double kinEnergy) override
G4double GetFinalLevelEnergy(G4int Z, G4int A, G4double energy)
G4bool BreakUpChain(G4FragmentVector *theResult, G4Fragment *theNucleus) override
void SetGammaTransition(G4GammaTransition *)
G4int GetVacantShellNumber() const
G4FragmentVector * BreakItUp(const G4Fragment &theNucleus)
void Initialise() override
G4Fragment * EmittedFragment(G4Fragment *theNucleus) override
void SetVerboseLevel(G4int verbose)
G4PhotonEvaporation(const G4PhotonEvaporation &right)=delete