source: trunk/source/processes/hadronic/models/neutron_hp/src/G4NeutronHPFSFissionFS.cc@ 1036

Last change on this file since 1036 was 819, checked in by garnier, 17 years ago

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18// * This code implementation is the result of the scientific and *
19// * technical work of the GEANT4 collaboration. *
20// * By using, copying, modifying or distributing the software (or *
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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#include "G4NeutronHPFSFissionFS.hh"
31#include "G4ReactionProduct.hh"
32#include "G4Nucleus.hh"
33#include "G4Proton.hh"
34#include "G4Deuteron.hh"
35#include "G4Triton.hh"
36#include "G4Alpha.hh"
37#include "G4ThreeVector.hh"
38#include "G4Poisson.hh"
39#include "G4LorentzVector.hh"
40#include "G4NeutronHPDataUsed.hh"
41
42 void G4NeutronHPFSFissionFS::Init (G4double A, G4double Z, G4String & dirName, G4String & )
43 {
44 G4String tString = "/FS/";
45 G4bool dbool;
46 G4NeutronHPDataUsed aFile = theNames.GetName(static_cast<G4int>(A), static_cast<G4int>(Z), dirName, tString, dbool);
47 G4String filename = aFile.GetName();
48 if(!dbool)
49 {
50 hasAnyData = false;
51 hasFSData = false;
52 hasXsec = false;
53 return;
54 }
55 std::ifstream theData(filename, std::ios::in);
56
57 // here it comes
58 G4int infoType, dataType;
59 hasFSData = false;
60 while (theData >> infoType)
61 {
62 hasFSData = true;
63 theData >> dataType;
64 switch(infoType)
65 {
66 case 1:
67 if(dataType==4) theNeutronAngularDis.Init(theData);
68 if(dataType==5) thePromptNeutronEnDis.Init(theData);
69 if(dataType==12) theFinalStatePhotons.InitMean(theData);
70 if(dataType==14) theFinalStatePhotons.InitAngular(theData);
71 if(dataType==15) theFinalStatePhotons.InitEnergies(theData);
72 break;
73 case 2:
74 if(dataType==1) theFinalStateNeutrons.InitMean(theData);
75 break;
76 case 3:
77 if(dataType==1) theFinalStateNeutrons.InitDelayed(theData);
78 if(dataType==5) theDelayedNeutronEnDis.Init(theData);
79 break;
80 case 4:
81 if(dataType==1) theFinalStateNeutrons.InitPrompt(theData);
82 break;
83 case 5:
84 if(dataType==1) theEnergyRelease.Init(theData);
85 break;
86 default:
87 G4cout << "G4NeutronHPFSFissionFS::Init: unknown data type"<<dataType<<G4endl;
88 throw G4HadronicException(__FILE__, __LINE__, "G4NeutronHPFSFissionFS::Init: unknown data type");
89 break;
90 }
91 }
92 targetMass = theFinalStateNeutrons.GetTargetMass();
93 theData.close();
94 }
95
96
97 G4DynamicParticleVector * G4NeutronHPFSFissionFS::ApplyYourself(G4int nPrompt,
98 G4int nDelayed, G4double * theDecayConst)
99 {
100 G4int i;
101 G4DynamicParticleVector * aResult = new G4DynamicParticleVector;
102 G4ReactionProduct boosted;
103 boosted.Lorentz(theNeutron, theTarget);
104 G4double eKinetic = boosted.GetKineticEnergy();
105
106// Build neutrons
107 G4ReactionProduct * theNeutrons = new G4ReactionProduct[nPrompt+nDelayed];
108 for(i=0; i<nPrompt+nDelayed; i++)
109 {
110 theNeutrons[i].SetDefinition(G4Neutron::Neutron());
111 }
112
113// sample energies
114 G4int it, dummy;
115 G4double tempE;
116 for(i=0; i<nPrompt; i++)
117 {
118 tempE = thePromptNeutronEnDis.Sample(eKinetic, dummy); // energy distribution (file5) always in lab
119 theNeutrons[i].SetKineticEnergy(tempE);
120 }
121 for(i=nPrompt; i<nPrompt+nDelayed; i++)
122 {
123 theNeutrons[i].SetKineticEnergy(theDelayedNeutronEnDis.Sample(eKinetic, it)); // dito
124 if(it==0) theNeutrons[i].SetKineticEnergy(thePromptNeutronEnDis.Sample(eKinetic, dummy));
125 theDecayConst[i-nPrompt] = theFinalStateNeutrons.GetDecayConstant(it); // this is returned
126 }
127
128// sample neutron angular distribution
129 for(i=0; i<nPrompt+nDelayed; i++)
130 {
131 theNeutronAngularDis.SampleAndUpdate(theNeutrons[i]); // angular comes back in lab automatically
132 }
133
134// already in lab. Add neutrons to dynamic particle vector
135 for(i=0; i<nPrompt+nDelayed; i++)
136 {
137 G4DynamicParticle * it = new G4DynamicParticle;
138 it->SetDefinition(theNeutrons[i].GetDefinition());
139 it->SetMomentum(theNeutrons[i].GetMomentum());
140 aResult->push_back(it);
141 }
142 delete [] theNeutrons;
143// return the result
144 return aResult;
145 }
146
147void G4NeutronHPFSFissionFS::SampleNeutronMult(G4int&all, G4int&Prompt, G4int&delayed, G4double eKinetic, G4int off)
148{
149 G4double promptNeutronMulti = 0;
150 promptNeutronMulti = theFinalStateNeutrons.GetPrompt(eKinetic);
151 G4double delayedNeutronMulti = 0;
152 delayedNeutronMulti = theFinalStateNeutrons.GetDelayed(eKinetic);
153
154 if(delayedNeutronMulti==0&&promptNeutronMulti==0)
155 {
156 Prompt = 0;
157 delayed = 0;
158 G4double totalNeutronMulti = theFinalStateNeutrons.GetMean(eKinetic);
159 all = G4Poisson(totalNeutronMulti-off);
160 all += off;
161 }
162 else
163 {
164 Prompt = G4Poisson(promptNeutronMulti-off);
165 Prompt += off;
166 delayed = G4Poisson(delayedNeutronMulti);
167 all = Prompt+delayed;
168 }
169}
170
171G4DynamicParticleVector * G4NeutronHPFSFissionFS::GetPhotons()
172{
173// sample photons
174 G4ReactionProductVector * temp;
175 G4ReactionProduct boosted;
176// the photon distributions are in the Nucleus rest frame.
177 boosted.Lorentz(theNeutron, theTarget);
178 G4double anEnergy = boosted.GetKineticEnergy();
179 temp = theFinalStatePhotons.GetPhotons(anEnergy);
180 if(temp == 0) { return 0; }
181
182// lorentz transform, and add photons to final state
183 unsigned int i;
184 G4DynamicParticleVector * result = new G4DynamicParticleVector;
185 for(i=0; i<temp->size(); i++)
186 {
187 // back to lab
188 temp->operator[](i)->Lorentz(*(temp->operator[](i)), -1.*theTarget);
189 G4DynamicParticle * theOne = new G4DynamicParticle;
190 theOne->SetDefinition(temp->operator[](i)->GetDefinition());
191 theOne->SetMomentum(temp->operator[](i)->GetMomentum());
192 result->push_back(theOne);
193 delete temp->operator[](i);
194 }
195 delete temp;
196 return result;
197}
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