Geant4  10.01.p02
G4LENDCapture.cc
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26 
27 #include "G4LENDCapture.hh"
28 #include "G4SystemOfUnits.hh"
29 #include "G4Nucleus.hh"
30 #include "G4ParticleTable.hh"
31 #include "G4IonTable.hh"
32 
34 {
35 
36  G4double temp = aTrack.GetMaterial()->GetTemperature();
37 
38  //G4int iZ = int ( aTarg.GetZ() );
39  //G4int iA = int ( aTarg.GetN() );
40  //migrate to integer A and Z (GetN_asInt returns number of neutrons in the nucleus since this)
41  G4int iZ = aTarg.GetZ_asInt();
42  G4int iA = aTarg.GetA_asInt();
43  G4int iM = 0;
44  if ( aTarg.GetIsotope() != NULL ) {
45  iM = aTarg.GetIsotope()->Getm();
46  }
47 
48  G4double ke = aTrack.GetKineticEnergy();
49 
50  G4HadFinalState* theResult = &theParticleChange;
51  theResult->Clear();
52 
53  G4GIDI_target* aTarget = usedTarget_map.find( lend_manager->GetNucleusEncoding( iZ , iA , iM ) )->second->GetTarget();
54  std::vector<G4GIDI_Product>* products = aTarget->getCaptureFinalState( ke*MeV, temp, NULL, NULL );
55 
56 
57  if ( products != NULL )
58  {
59 
60  G4ThreeVector p(0,0,0);
61  G4int totN = 0;
62 
63  for ( G4int j = 0; j < int( products->size() ); j++ )
64  {
65  G4int jZ = (*products)[j].Z;
66  G4int jA = (*products)[j].A;
67 
68  //G4cout << "ZA = " << 1000 * (*products)[j].Z + (*products)[j].A << " EK = "
69  // << (*products)[j].kineticEnergy
70  // << " px " << (*products)[j].px
71  // << " py " << (*products)[j].py
72  // << " pz " << (*products)[j].pz
73  // << G4endl;
74 
75  G4ThreeVector dp((*products)[j].px,(*products)[j].py,(*products)[j].pz);
76  p += dp;
77 
79 
80  if ( jA == 1 && jZ == 1 )
81  {
82  theSec->SetDefinition( G4Proton::Proton() );
83  totN += 1;
84  }
85  else if ( jA == 1 && jZ == 0 )
86  {
87  theSec->SetDefinition( G4Neutron::Neutron() );
88  totN += 1;
89  }
90  else if ( jZ > 0 )
91  {
92  if ( jA != 0 )
93  {
94  theSec->SetDefinition( G4IonTable::GetIonTable()->GetIon( jZ , jA , iM ) );
95  totN += jA;
96  }
97  else
98  {
99  theSec->SetDefinition( G4IonTable::GetIonTable()->GetIon( jZ , iA+1-totN , iM ) );
100  }
101  }
102  else
103  {
104  theSec->SetDefinition( G4Gamma::Gamma() );
105  }
106 
107  theSec->SetMomentum( G4ThreeVector( (*products)[j].px*MeV , (*products)[j].py*MeV , (*products)[j].pz*MeV ) );
108 
109  if ( dp.mag() == 0 )
110  {
111  theSec->SetMomentum( -p*MeV );
112  }
113 
114  theResult->AddSecondary( theSec );
115  }
116  }
117  delete products;
118 
119  theResult->SetStatusChange( stopAndKill );
120 
121  return theResult;
122 
123 }
G4int GetA_asInt() const
Definition: G4Nucleus.hh:109
static const double MeV
Definition: G4SIunits.hh:193
void SetMomentum(const G4ThreeVector &momentum)
CLHEP::Hep3Vector G4ThreeVector
int G4int
Definition: G4Types.hh:78
void SetStatusChange(G4HadFinalStateStatus aS)
G4int GetNucleusEncoding(G4int iZ, G4int iA, G4int iM)
G4int Getm() const
Definition: G4Isotope.hh:100
std::map< G4int, G4LENDUsedTarget * > usedTarget_map
Definition: G4LENDModel.hh:79
G4double GetKineticEnergy() const
static G4Proton * Proton()
Definition: G4Proton.cc:93
static const double second
Definition: G4SIunits.hh:138
std::vector< G4GIDI_Product > * getCaptureFinalState(double e_in, double temperature, double(*rng)(void *), void *rngState)
static G4Neutron * Neutron()
Definition: G4Neutron.cc:104
static G4Gamma * Gamma()
Definition: G4Gamma.cc:86
static G4IonTable * GetIonTable()
Definition: G4IonTable.hh:78
const G4Isotope * GetIsotope()
Definition: G4Nucleus.hh:119
G4int GetZ_asInt() const
Definition: G4Nucleus.hh:115
G4double GetTemperature() const
Definition: G4Material.hh:182
const G4Material * GetMaterial() const
void AddSecondary(G4DynamicParticle *aP, G4int mod=-1)
double G4double
Definition: G4Types.hh:76
void SetDefinition(const G4ParticleDefinition *aParticleDefinition)
G4LENDManager * lend_manager
Definition: G4LENDModel.hh:78
G4HadFinalState * ApplyYourself(const G4HadProjectile &aTrack, G4Nucleus &aTargetNucleus)