source: trunk/source/processes/hadronic/models/low_energy/src/G4LCapture.cc @ 1340

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27// $Id: G4LCapture.cc,v 1.14 2007/02/24 05:17:29 dennis Exp $
28// GEANT4 tag $Name: geant4-09-03-ref-09 $
29//
30//
31// G4 Model: Low-energy Neutron Capture
32// F.W. Jones, TRIUMF, 03-DEC-96
33//
34// This is a prototype of a low-energy neutron capture process.
35// Currently it is based on the GHEISHA routine CAPTUR,
36// and conforms fairly closely to the original Fortran.
37//
38// HPW Capture using models now. the code comes from the
39// original G4LCapture class.
40//
41// 25-JUN-98 FWJ: replaced missing Initialize for ParticleChange.
42//
43
44#include "globals.hh"
45#include "G4LCapture.hh"
46#include "Randomize.hh"
47
48G4LCapture::G4LCapture() : 
49   G4HadronicInteraction("G4LCapture")
50{   
51   SetMinEnergy( 0.0*GeV );
52   SetMaxEnergy( DBL_MAX );
53}
54
55G4LCapture::~G4LCapture()
56{
57   theParticleChange.Clear();
58}
59
60G4HadFinalState*
61G4LCapture::ApplyYourself(const G4HadProjectile & aTrack, G4Nucleus& targetNucleus)
62{
63
64   theParticleChange.Clear();
65   theParticleChange.SetStatusChange(stopAndKill);
66
67   G4double N = targetNucleus.GetN();
68   G4double Z = targetNucleus.GetZ();
69
70   const G4LorentzVector theMom = aTrack.Get4Momentum();
71   G4double P = theMom.vect().mag()/GeV;
72   G4double Px = theMom.vect().x()/GeV;
73   G4double Py = theMom.vect().y()/GeV;
74   G4double Pz = theMom.vect().z()/GeV;
75   G4double E = theMom.e()/GeV;
76   G4double E0 = aTrack.GetDefinition()->GetPDGMass()/GeV;
77   G4double Q = aTrack.GetDefinition()->GetPDGCharge();
78   if (verboseLevel > 1) {
79      G4cout << "G4LCapture:ApplyYourself: incident particle:" << G4endl;
80      G4cout << "P      " << P << " GeV/c" << G4endl;
81      G4cout << "Px     " << Px << " GeV/c" << G4endl;
82      G4cout << "Py     " << Py << " GeV/c" << G4endl;
83      G4cout << "Pz     " << Pz << " GeV/c" << G4endl;
84      G4cout << "E      " << E << " GeV" << G4endl;
85      G4cout << "mass   " << E0 << " GeV" << G4endl;
86      G4cout << "charge " << Q << G4endl;
87   }
88
89   // GHEISHA ADD operation to get total energy, mass, charge:
90
91   if (verboseLevel > 1) {
92      G4cout << "G4LCapture:ApplyYourself: material:" << G4endl;
93      G4cout << "A      " << N << G4endl;
94      G4cout << "Z   " << Z  << G4endl;
95      G4cout << "atomic mass " << 
96        Atomas(N, Z) << "GeV" << G4endl;
97   }
98   E = E + Atomas(N, Z);
99   G4double E02 = E*E - P*P;
100   E0 = std::sqrt(std::abs(E02));
101   if (E02 < 0) E0 = -E0;
102   Q = Q + Z;
103   if (verboseLevel > 1) {
104      G4cout << "G4LCapture:ApplyYourself: total:" << G4endl;
105      G4cout << "E      " << E << " GeV" << G4endl;
106      G4cout << "mass   " << E0 << " GeV" << G4endl;
107      G4cout << "charge " << Q << G4endl;
108   }
109   Px = -Px;
110   Py = -Py;
111   Pz = -Pz;
112
113   // Make a gamma...
114
115   G4double p;
116   if (Z == 1 && N == 1) { // special case for hydrogen
117     p = 0.0022;
118   } else {
119     G4double ran = G4RandGauss::shoot();
120     p = 0.0065 + ran*0.0010;
121   }
122
123   G4double ran1 = G4UniformRand();
124   G4double ran2 = G4UniformRand();
125   G4double cost = -1. + 2.*ran1;
126   G4double sint = std::sqrt(std::abs(1. - cost*cost));
127   G4double phi = ran2*twopi;
128
129   G4double px = p*sint*std::sin(phi);
130   G4double py = p*sint*std::cos(phi);
131   G4double pz = p*cost;
132   G4double e = p;
133   G4double e0 = 0.;
134
135   G4double a = px*Px + py*Py + pz*Pz;
136   a = (a/(E + E0) - e)/E0;
137
138   px = px + a*Px;
139   py = py + a*Py;
140   pz = pz + a*Pz;
141
142   G4DynamicParticle* aGamma;
143   aGamma = new G4DynamicParticle(G4Gamma::GammaDefinition(),
144                                  G4ThreeVector(px*GeV, py*GeV, pz*GeV));
145   theParticleChange.AddSecondary(aGamma);
146
147   // Make another gamma if there is sufficient energy left over...
148
149   G4double xp = 0.008 - p;
150   if (xp > 0.) {
151     if (Z > 1 || N > 1) { 
152       ran1 = G4UniformRand();
153       ran2 = G4UniformRand();
154       cost = -1. + 2.*ran1;
155       sint = std::sqrt(std::abs(1. - cost*cost));
156       phi = ran2*twopi;
157
158       px = xp*sint*std::sin(phi);
159       py = xp*sint*std::cos(phi);
160       pz = xp*cost;
161       e = xp;
162       e0 = 0.;
163
164       a = px*Px + py*Py + pz*Pz;
165       a = (a/(E + E0) - e)/E0;
166
167       px = px + a*Px;
168       py = py + a*Py;
169       pz = pz + a*Pz;
170
171       aGamma = new G4DynamicParticle(G4Gamma::GammaDefinition(),
172                                      G4ThreeVector(px*GeV, py*GeV, pz*GeV));
173       theParticleChange.AddSecondary(aGamma);
174     }
175   }
176   return &theParticleChange;
177}
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