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G4AdjointProton.cc
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26 // $Id: G4AdjointProton.cc 67971 2013-03-13 10:13:24Z gcosmo $
27 //
28 
29 
30 #include "G4AdjointProton.hh"
31 #include "G4PhysicalConstants.hh"
32 #include "G4SystemOfUnits.hh"
33 #include "G4ParticleTable.hh"
34 
35 // ######################################################################
36 // ### PROTON ###
37 // ######################################################################
38 G4AdjointProton* G4AdjointProton::theInstance = 0;
39 
41 {
42  if (theInstance !=0) return theInstance;
43  const G4String name = "adj_proton";
44  // search in particle table]
46  G4ParticleDefinition* anInstance = pTable->FindParticle(name);
47  if (anInstance ==0)
48  {
49  // create particle
50  //
51  // Arguments for constructor are as follows
52  // name mass width charge
53  // 2*spin parity C-conjugation
54  // 2*Isospin 2*Isospin3 G-parity
55  // type lepton number baryon number PDG encoding
56  // stable lifetime decay table
57  // shortlived subType anti_encoding
58  // use constants in CLHEP
59  // static const double proton_mass_c2 = 938.27231 * MeV;
60 
61  anInstance = new G4ParticleDefinition(
62  name, proton_mass_c2, 0.0*MeV, -eplus,
63  1, +1, 0,
64  1, +1, 0,
65  "adjoint", 0, +1, 100002212,
66  true, -1.0, NULL,
67  false, "adjoint_ion", 0,
68  0.0
69  );
70 
71  // Magnetic Moment
73  anInstance->SetPDGMagneticMoment( 2.792847351 * mN);
74  }
75  theInstance = reinterpret_cast<G4AdjointProton*>(anInstance);
76  return theInstance;
77 }
78 
80 {
81  return Definition();
82 }
83 
85 {
86  return Definition();
87 }
88 
89 
G4ParticleDefinition * FindParticle(G4int PDGEncoding)
const XML_Char * name
static G4AdjointProton * AdjointProtonDefinition()
float proton_mass_c2
Definition: hepunit.py:275
static G4ParticleTable * GetParticleTable()
static G4AdjointProton * AdjointProton()
static G4AdjointProton * Definition()
double G4double
Definition: G4Types.hh:76
void SetPDGMagneticMoment(G4double mageticMoment)