Geant4 9.6.0
Toolkit for the simulation of the passage of particles through matter
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G4INCLPionNucleonChannel.cc
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25//
26// INCL++ intra-nuclear cascade model
27// Pekka Kaitaniemi, CEA and Helsinki Institute of Physics
28// Davide Mancusi, CEA
29// Alain Boudard, CEA
30// Sylvie Leray, CEA
31// Joseph Cugnon, University of Liege
32//
33// INCL++ revision: v5.1.8
34//
35#define INCLXX_IN_GEANT4_MODE 1
36
37#include "globals.hh"
38
42#include "G4INCLRandom.hh"
43#include "G4INCLGlobals.hh"
44#include "G4INCLLogger.hh"
45
46namespace G4INCL {
47
49 : theNucleus(nucleus), particle1(p1), particle2(p2), locE(localE)
50 {
51
52 }
53
55
56 }
57
59 FinalState *fs = new FinalState;
60
61 Particle * nucleon;
62 Particle * pion;
63 if(particle1->isNucleon()) {
64 nucleon = particle1;
65 pion = particle2;
66 } else {
67 nucleon = particle2;
68 pion = particle1;
69 }
70
71 ParticleType deltaType = DeltaZero;
72 if(ParticleConfig::isPair(particle1, particle2, Proton, PiPlus)) {
73 deltaType = DeltaPlusPlus;
74 } else if(ParticleConfig::isPair(particle1, particle2, Neutron, PiPlus)) {
75 deltaType = DeltaPlus;
76 } else if(ParticleConfig::isPair(particle1, particle2, Proton, PiZero)) {
77 deltaType = DeltaPlus;
78 } else if(ParticleConfig::isPair(particle1, particle2, Neutron, PiZero)) {
79 deltaType = DeltaZero;
80 } else if(ParticleConfig::isPair(particle1, particle2, Proton, PiMinus)) {
81 deltaType = DeltaZero;
82 } else if(ParticleConfig::isPair(particle1, particle2, Neutron, PiMinus)) {
83 deltaType = DeltaMinus;
84 } else {
85 ERROR("Unknown particle pair in Pi-N collision." << std::endl);
86 }
87
88 G4double deltaEnergy = nucleon->getEnergy() - nucleon->getPotentialEnergy()
89 + pion->getEnergy() - pion->getPotentialEnergy();
90
91 nucleon->setType(deltaType); // nucleon becomes the delta
92 deltaEnergy += theNucleus->getPotential()->computePotentialEnergy(nucleon);
93 nucleon->setEnergy(deltaEnergy); // set the energy of the delta
94
95 ThreeVector deltaMomentum = nucleon->getMomentum() + pion->getMomentum();
96 nucleon->setMomentum(deltaMomentum);
97
98 const G4double deltaMass = std::sqrt(deltaEnergy*deltaEnergy - deltaMomentum.mag2());
99 nucleon->setMass(deltaMass);
100 theNucleus->updatePotentialEnergy(nucleon);
101
102 fs->addModifiedParticle(nucleon); // nucleon became a delta
103 fs->addDestroyedParticle(pion); // pion was removed
104 return fs;
105 }
106
107}
#define ERROR(x)
double G4double
Definition: G4Types.hh:64
bool G4bool
Definition: G4Types.hh:67
void addModifiedParticle(Particle *p)
void addDestroyedParticle(Particle *p)
virtual G4double computePotentialEnergy(const Particle *const p) const =0
NuclearPotential::INuclearPotential * getPotential() const
Getter for thePotential.
void updatePotentialEnergy(Particle *p)
Update the particle potential energy.
G4double getEnergy() const
G4double getPotentialEnergy() const
Get the particle potential energy.
void setMass(G4double mass)
const G4INCL::ThreeVector & getMomentum() const
virtual void setMomentum(const G4INCL::ThreeVector &momentum)
void setEnergy(G4double energy)
void setType(ParticleType t)
G4bool isNucleon() const
PionNucleonChannel(Particle *, Particle *, Nucleus *, const G4bool localE=false)
G4double mag2() const
G4bool isPair(Particle const *const p1, Particle const *const p2, ParticleType t1, ParticleType t2)