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G4ParticleHPIsotropic.cc
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25 //
26 // neutron_hp -- source file
27 // J.P. Wellisch, Nov-1996
28 // A prototype of the low energy neutron transport model.
29 //
30 // P. Arce, June-2014 Conversion neutron_hp to particle_hp
31 //
32 #include "G4ParticleHPIsotropic.hh"
33 #include "G4PhysicalConstants.hh"
34 #include "G4SystemOfUnits.hh"
35 #include "Randomize.hh"
36 #include "G4Gamma.hh"
37 #include "G4Electron.hh"
38 #include "G4Positron.hh"
39 #include "G4Neutron.hh"
40 #include "G4Proton.hh"
41 #include "G4Deuteron.hh"
42 #include "G4Triton.hh"
43 #include "G4He3.hh"
44 #include "G4Alpha.hh"
45 #include "G4IonTable.hh"
46 
47 
48 void G4ParticleHPIsotropic::Init(std::istream & )
49 {
50 }
51 
53 {
54  G4ReactionProduct * result = new G4ReactionProduct;
55  G4int Z = static_cast<G4int>(massCode/1000);
56  G4int A = static_cast<G4int>(massCode-1000*Z);
57 
58  if(massCode==0)
59  {
60  result->SetDefinition(G4Gamma::Gamma());
61  }
62  else if(A==0)
63  {
65  if(Z==1) result->SetDefinition(G4Positron::Positron());
66  }
67  else if(A==1)
68  {
70  if(Z==1) result->SetDefinition(G4Proton::Proton());
71  }
72  else if(A==2)
73  {
75  }
76  else if(A==3)
77  {
78  result->SetDefinition(G4Triton::Triton());
79  if(Z==2) result->SetDefinition(G4He3::He3());
80  }
81  else if(A==4)
82  {
83  result->SetDefinition(G4Alpha::Alpha());
84  //110607 TK modified following parts for migration to G4NDL3.15 (ENDF VII.r0)
85  //if(Z!=2) throw G4HadronicException(__FILE__, __LINE__, "Unknown ion case 1");
86  if(Z!=2)
87  {
88  result->SetDefinition( G4IonTable::GetIonTable()->GetIon ( Z , A , 0.0 ) );
89  }
90  }
91  else
92  {
93  //110607 TK modified following parts for migration to G4NDL3.15 (ENDF VII.r0)
94  result->SetDefinition( G4IonTable::GetIonTable()->GetIon ( Z , A , 0.0 ) );
95  //throw G4HadronicException(__FILE__, __LINE__, "G4ParticleHPIsotropic: Unknown ion case 2");
96  }
97 
98  // Bug #1745 DHW G4double cosTh = G4UniformRand();
99  G4double cosTh = 2.*G4UniformRand()-1.;
101  G4double theta = std::acos(cosTh);
102  G4double sinth = std::sin(theta);
103 
104 // we need the the Q value of the reaction
105  result->SetKineticEnergy(std::max(0.001*MeV, anEnergy+GetQValue()));
106  G4double mtot = result->GetTotalMomentum();
107  G4ThreeVector tempVector(mtot*sinth*std::cos(phi), mtot*sinth*std::sin(phi), mtot*cosTh);
108  result->SetMomentum(tempVector);
109 
110  return result;
111 }