Geant4-11
G4DNACPA100ElasticModel.hh
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25//
26// CPA100 elastic model class for electrons
27//
28// Based on the work of M. Terrissol and M. C. Bordage
29//
30// Users are requested to cite the following papers:
31// - M. Terrissol, A. Baudre, Radiat. Prot. Dosim. 31 (1990) 175-177
32// - M.C. Bordage, J. Bordes, S. Edel, M. Terrissol, X. Franceries,
33// M. Bardies, N. Lampe, S. Incerti, Phys. Med. 32 (2016) 1833-1840
34//
35// Authors of this class:
36// M.C. Bordage, M. Terrissol, S. Edel, J. Bordes, S. Incerti
37//
38// 15.01.2014: creation
39//
40
41#ifndef G4DNACPA100ElasticModel_h
42#define G4DNACPA100ElasticModel_h 1
43
44#include <map>
46#include "G4VEmModel.hh"
47#include "G4Electron.hh"
50//#include "G4DNACPA100LogLogInterpolation.hh"
52#include "G4NistManager.hh"
53
55{
56
57public:
58
60 const G4String& nam = "DNACPA100ElasticModel");
61
63
64 virtual void Initialise(const G4ParticleDefinition*, const G4DataVector&);
65
67 const G4ParticleDefinition* p,
68 G4double ekin,
69 G4double emin,
71
72 virtual void SampleSecondaries(std::vector<G4DynamicParticle*>*,
74 const G4DynamicParticle*,
75 G4double tmin,
76 G4double maxEnergy);
77
78 inline void SelectStationary(G4bool input);
79
80protected:
81
83
84private:
85
87
88 // Water density table
89 const std::vector<G4double>* fpMolWaterDensity;
90
93
94 // Cross section
95
96 typedef std::map<G4String,G4String,std::less<G4String> > MapFile;
98
99 typedef std::map<G4String,G4DNACrossSectionDataSet*,std::less<G4String> > MapData;
101
102 // Final state
103
104 //G4double DifferentialCrossSection(G4ParticleDefinition * aParticleDefinition, G4double k, G4double theta);
105
106 G4double Theta(G4ParticleDefinition * aParticleDefinition, G4double k, G4double integrDiff);
107
109
111
113
115 G4double e12,
116 G4double e21,
117 G4double e22,
118 G4double x11,
119 G4double x12,
120 G4double x21,
121 G4double x22,
122 G4double t1,
123 G4double t2,
124 G4double t,
125 G4double e);
126
127 typedef std::map<G4double, std::map<G4double, G4double> > TriDimensionMap;
128
130 std::vector<G4double> eTdummyVec;
131
132 typedef std::map<G4double, std::vector<G4double> > VecMap;
134
136
137 //
138
141
142};
143
144//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo....
145
147{
148 statCode = input;
149}
150
151//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo....
152
153
154#endif
static const G4double e1[44]
static const G4double e2[44]
static const G4double emax
double G4double
Definition: G4Types.hh:83
bool G4bool
Definition: G4Types.hh:86
int G4int
Definition: G4Types.hh:85
G4DNACPA100ElasticModel & operator=(const G4DNACPA100ElasticModel &right)
std::map< G4double, std::map< G4double, G4double > > TriDimensionMap
G4double QuadInterpolator(G4double e11, G4double e12, G4double e21, G4double e22, G4double x11, G4double x12, G4double x21, G4double x22, G4double t1, G4double t2, G4double t, G4double e)
std::map< G4String, G4DNACrossSectionDataSet *, std::less< G4String > > MapData
std::vector< G4double > eTdummyVec
G4double Theta(G4ParticleDefinition *aParticleDefinition, G4double k, G4double integrDiff)
G4ParticleChangeForGamma * fParticleChangeForGamma
G4double RandomizeCosTheta(G4double k)
virtual G4double CrossSectionPerVolume(const G4Material *material, const G4ParticleDefinition *p, G4double ekin, G4double emin, G4double emax)
virtual void Initialise(const G4ParticleDefinition *, const G4DataVector &)
G4double LinLogInterpolate(G4double e1, G4double e2, G4double e, G4double xs1, G4double xs2)
G4double LogLogInterpolate(G4double e1, G4double e2, G4double e, G4double xs1, G4double xs2)
G4DNACPA100ElasticModel(const G4DNACPA100ElasticModel &)
virtual void SampleSecondaries(std::vector< G4DynamicParticle * > *, const G4MaterialCutsCouple *, const G4DynamicParticle *, G4double tmin, G4double maxEnergy)
const std::vector< G4double > * fpMolWaterDensity
G4DNACPA100ElasticModel(const G4ParticleDefinition *p=0, const G4String &nam="DNACPA100ElasticModel")
std::map< G4String, G4String, std::less< G4String > > MapFile
G4double LinLinInterpolate(G4double e1, G4double e2, G4double e, G4double xs1, G4double xs2)
std::map< G4double, std::vector< G4double > > VecMap
string material
Definition: eplot.py:19