source: trunk/source/processes/hadronic/stopping/src/G4PiMinusStopMaterial.cc @ 1351

Last change on this file since 1351 was 1347, checked in by garnier, 14 years ago

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25//
26//      File name:     G4PiMinusStopMaterial
27//
28//      Author:        Maria Grazia Pia (pia@genova.infn.it)
29//
30//      Creation date: 8 May 1998
31//
32// -------------------------------------------------------------------
33
34#include "G4ios.hh"
35
36#include "G4PiMinusStopMaterial.hh"
37
38#include <vector>
39
40#include "globals.hh"
41#include "Randomize.hh"
42#include "G4Proton.hh"
43#include "G4Neutron.hh"
44#include "G4PionMinus.hh"
45#include "G4ParticleTypes.hh"
46#include "G4ReactionKinematics.hh"
47#include "G4DynamicParticleVector.hh"
48#include "G4LorentzVector.hh"
49#include "G4PiMinusStopMaterial.hh"
50#include "G4DistributionGenerator.hh"
51
52
53// Constructor
54
55G4PiMinusStopMaterial::G4PiMinusStopMaterial()
56{
57  _definitions = 0;
58  _momenta = 0;
59  _distributionE = 0;
60  _distributionAngle = 0;
61  theR = 0.5;
62}
63
64
65// Destructor
66
67G4PiMinusStopMaterial::~G4PiMinusStopMaterial()
68{
69  if (_definitions != 0) delete _definitions;
70  _definitions = 0;
71
72  for (unsigned int i=0; i<_momenta->size(); i++) delete(*_momenta)[i];
73  if (_momenta != 0) delete _momenta;
74
75  delete _distributionE;
76  delete _distributionAngle;
77}
78
79std::vector<G4ParticleDefinition*>* G4PiMinusStopMaterial::DefinitionVector()
80{
81
82  _definitions->push_back(G4Neutron::Neutron());
83
84  G4double ranflat = G4UniformRand();
85  if (ranflat < theR)
86    { _definitions->push_back(G4Proton::Proton()); }
87  else
88    { _definitions->push_back(G4Neutron::Neutron()); }
89 
90  return _definitions;
91
92}
93
94std::vector<G4LorentzVector*>*
95G4PiMinusStopMaterial::P4Vector(const G4double binding,
96                                const G4double massNucleus)
97{
98  // Generate energy of direct absorption products according to experimental
99  // data.  The energy distribution of the two nucleons is assumed to be the
100  // same for protons and neutrons. 
101
102  G4double eKin1;
103  G4double eKin2;
104  G4double eRecoil;
105
106  // Assume absorption on two nucleons
107  G4int nNucleons = 2;
108  G4double availableE = G4PionMinus::PionMinus()->GetPDGMass() - nNucleons * binding;
109  G4LorentzVector p1;
110  G4LorentzVector p2;
111
112  do 
113    { 
114      G4double ranflat;
115      G4double p;
116      G4double energy;
117      G4double mass;
118
119      ranflat = G4UniformRand();
120      eKin1 = _distributionE->Generate(ranflat);
121      mass = (*_definitions)[0]->GetPDGMass();
122      energy = eKin1 + mass;
123      p = std::sqrt(energy*energy - mass*mass);
124      G4double theta1 = pi*G4UniformRand();
125      G4double phi1 = GenerateAngle(2.*pi);
126      p1 = MakeP4(p,theta1,phi1,energy);
127
128      ranflat = G4UniformRand();
129      eKin2 = _distributionE->Generate(ranflat);
130      mass = (*_definitions)[1]->GetPDGMass();
131      energy = eKin2 + mass;
132      p = std::sqrt(energy*energy - mass*mass);
133      ranflat = G4UniformRand();
134      G4double opAngle = _distributionAngle->Generate(ranflat);
135      G4double theta2 = theta1 + opAngle;
136      G4double phi2 = phi1 + opAngle;
137 
138      p2 = MakeP4(p,theta2,phi2,energy);
139
140      G4double pNucleus = (p1.vect() + p2.vect()).mag();
141      eRecoil = std::sqrt(pNucleus*pNucleus + massNucleus*massNucleus) - massNucleus;
142
143      // ---- Debug     
144      //      G4cout << " ---- binding = " << binding << ", nucleus mass = " << massNucleus
145      //             << ", p nucleus = " << pNucleus << G4endl;
146      //      G4cout << "eKin1,2 " << eKin1 << " " << eKin2 << " eRecoil " << eRecoil
147      //             << " availableE " << availableE << G4endl;
148      // ----
149
150    }  while ((eKin1 + eKin2 + eRecoil) > availableE);
151 
152  _momenta->push_back(new G4LorentzVector(p1));
153  _momenta->push_back(new G4LorentzVector(p2));
154
155  return _momenta;
156
157}
158
159G4double G4PiMinusStopMaterial::GenerateAngle(G4double x)
160{
161  G4double ranflat = G4UniformRand();
162  G4double value = ranflat * x;
163  return value;
164}
165
166G4LorentzVector G4PiMinusStopMaterial::MakeP4(G4double p, G4double theta, G4double phi, G4double e)
167{
168  //  G4LorentzVector p4;
169  G4double px = p * std::sin(theta) * std::cos(phi);
170  G4double py = p * std::sin(theta) * std::sin(phi);
171  G4double pz = p * std::cos(theta);
172  G4LorentzVector p4(px,py,pz,e);
173  return p4;
174}
175
176G4double G4PiMinusStopMaterial::RecoilEnergy(const G4double mass)
177{
178  G4ThreeVector p(0.,0.,0.);
179 
180  for (unsigned int i = 0; i< _momenta->size(); i++)
181    {
182      p = p + (*_momenta)[i]->vect();
183    }
184  G4double pNucleus = p.mag();
185  G4double eNucleus = std::sqrt(pNucleus*pNucleus + mass*mass);
186
187  return eNucleus;
188}
189
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