Geant4  9.6.p02
 All Classes Namespaces Files Functions Variables Typedefs Enumerations Enumerator Friends Macros Groups Pages
HadronPhysicsFTFP_BERT_TRV.cc
Go to the documentation of this file.
1 //
2 // ********************************************************************
3 // * License and Disclaimer *
4 // * *
5 // * The Geant4 software is copyright of the Copyright Holders of *
6 // * the Geant4 Collaboration. It is provided under the terms and *
7 // * conditions of the Geant4 Software License, included in the file *
8 // * LICENSE and available at http://cern.ch/geant4/license . These *
9 // * include a list of copyright holders. *
10 // * *
11 // * Neither the authors of this software system, nor their employing *
12 // * institutes,nor the agencies providing financial support for this *
13 // * work make any representation or warranty, express or implied, *
14 // * regarding this software system or assume any liability for its *
15 // * use. Please see the license in the file LICENSE and URL above *
16 // * for the full disclaimer and the limitation of liability. *
17 // * *
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 *
21 // * any work based on the software) you agree to acknowledge its *
22 // * use in resulting scientific publications, and indicate your *
23 // * acceptance of all terms of the Geant4 Software license. *
24 // ********************************************************************
25 //
26 // $Id$
27 //
28 //---------------------------------------------------------------------------
29 //
30 // ClassName:
31 //
32 // Author: 2007 Gunter Folger
33 // created from HadronPhysicsFTFP
34 //
35 // Modified:
36 //
37 //----------------------------------------------------------------------------
38 //
39 #include <iomanip>
40 
42 
43 #include "globals.hh"
44 #include "G4ios.hh"
45 #include "G4SystemOfUnits.hh"
46 #include "G4ParticleDefinition.hh"
47 #include "G4ParticleTable.hh"
48 
49 #include "G4MesonConstructor.hh"
50 #include "G4BaryonConstructor.hh"
53 #include "G4NeutronRadCapture.hh"
55 #include "G4LFission.hh"
60 #include "G4NeutronInelasticXS.hh"
61 #include "G4NeutronCaptureXS.hh"
62 
63 #include "G4PhysListUtil.hh"
64 
65 // factory
67 //
69 
71  : G4VPhysicsConstructor("hInelastic FTFP_BERT_TRV")
72  , theNeutrons(0)
73  , theBertiniNeutron(0)
74  , theFTFPNeutron(0)
75  , thePiK(0)
76  , theBertiniPiK(0)
77  , theFTFPPiK(0)
78  , thePro(0)
79  , theBertiniPro(0)
80  , theFTFPPro(0)
81  , theHyperon(0)
82  , theAntiBaryon(0)
83  , theFTFPAntiBaryon(0)
84  , QuasiElastic(false)
85  , ChipsKaonMinus(0)
86  , ChipsKaonPlus(0)
87  , ChipsKaonZero(0)
88  , xsNeutronInelasticXS(0)
89  , xsNeutronCaptureXS(0)
90 {}
91 
93  : G4VPhysicsConstructor(name)
94  , theNeutrons(0)
95  , theBertiniNeutron(0)
96  , theFTFPNeutron(0)
97  , thePiK(0)
98  , theBertiniPiK(0)
99  , theFTFPPiK(0)
100  , thePro(0)
101  , theBertiniPro(0)
102  , theFTFPPro(0)
103  , theHyperon(0)
104  , theAntiBaryon(0)
105  , theFTFPAntiBaryon(0)
106  , QuasiElastic(quasiElastic)
107  , ChipsKaonMinus(0)
108  , ChipsKaonPlus(0)
109  , ChipsKaonZero(0)
110  , xsNeutronInelasticXS(0)
111  , xsNeutronCaptureXS(0)
112 {}
113 
114 
115 void HadronPhysicsFTFP_BERT_TRV::CreateModels()
116 {
117  G4double minFTFP= 3.0 * GeV;
118  G4double maxBERT= 12.0 * GeV;
119  // G4double minFTFP= 5.0 * GeV; G4double maxBERT= 7.0 * GeV;
120  G4cout << " Revised FTFTP_BERT_TRV - new threshold between BERT and FTFP "
121  << " is over the interval " << minFTFP/GeV << " to " << maxBERT/GeV
122  << " GeV. " << G4endl;
123  G4cout << " -- quasiElastic was asked to be " << QuasiElastic
124  << " and it is reset to " << false << G4endl;
125  QuasiElastic= false;
126 
127  theNeutrons=new G4NeutronBuilder;
128  theNeutrons->RegisterMe(theBertiniNeutron=new G4BertiniNeutronBuilder);
129  theBertiniNeutron->SetMinEnergy(0.0*GeV);
130  theBertiniNeutron->SetMaxEnergy(maxBERT);
131  theFTFPNeutron=new G4FTFPNeutronBuilder(QuasiElastic);
132  theNeutrons->RegisterMe(theFTFPNeutron);
133  theFTFPNeutron->SetMinEnergy(minFTFP);
134 
135  thePro=new G4ProtonBuilder;
136  theFTFPPro=new G4FTFPProtonBuilder(QuasiElastic);
137  thePro->RegisterMe(theFTFPPro);
138  thePro->RegisterMe(theBertiniPro=new G4BertiniProtonBuilder);
139  theFTFPPro->SetMinEnergy(minFTFP);
140  theBertiniPro->SetMaxEnergy(maxBERT);
141 
142  thePiK=new G4PiKBuilder;
143  theFTFPPiK=new G4FTFPPiKBuilder(QuasiElastic);
144  thePiK->RegisterMe(theFTFPPiK);
145  thePiK->RegisterMe(theBertiniPiK=new G4BertiniPiKBuilder);
146  theFTFPPiK->SetMinEnergy(minFTFP);
147  theBertiniPiK->SetMaxEnergy(maxBERT);
148 
149  theHyperon=new G4HyperonFTFPBuilder;
150 
151  theAntiBaryon=new G4AntiBarionBuilder;
152  theAntiBaryon->RegisterMe(theFTFPAntiBaryon=new G4FTFPAntiBarionBuilder(QuasiElastic));
153 }
154 
156 {
157  delete theNeutrons;
158  delete theBertiniNeutron;
159  delete theFTFPNeutron;
160 
161  delete thePiK;
162  delete theBertiniPiK;
163  delete theFTFPPiK;
164 
165  delete thePro;
166  delete theBertiniPro;
167  delete theFTFPPro;
168 
169  delete theHyperon;
170  delete theAntiBaryon;
171  delete theFTFPAntiBaryon;
172 
173  delete xsNeutronInelasticXS;
174  delete xsNeutronCaptureXS;
175 }
176 
178 {
179  G4MesonConstructor pMesonConstructor;
180  pMesonConstructor.ConstructParticle();
181 
182  G4BaryonConstructor pBaryonConstructor;
183  pBaryonConstructor.ConstructParticle();
184 
185  G4ShortLivedConstructor pShortLivedConstructor;
186  pShortLivedConstructor.ConstructParticle();
187 }
188 
189 #include "G4ProcessManager.hh"
191 {
192  CreateModels();
193  theNeutrons->Build();
194  thePro->Build();
195  thePiK->Build();
196 
197  theHyperon->Build();
198  theAntiBaryon->Build();
199 
200  // --- Kaons ---
201  // Use Chips cross sections
205 
210 
211  // --- Neutrons ---
212  // Use the same cross sections and neutron capture as in QBBC.
213  // Need also to assigned a model (Gheisha) to fission.
214  xsNeutronInelasticXS = new G4NeutronInelasticXS();
216 
217  G4HadronicProcess* capture = 0;
218  G4HadronicProcess* fission = 0;
220  G4ProcessVector* pv = pmanager->GetProcessList();
221  for ( size_t i=0; i < static_cast<size_t>(pv->size()); ++i ) {
222  if ( fCapture == ((*pv)[i])->GetProcessSubType() ) {
223  capture = static_cast<G4HadronicProcess*>((*pv)[i]);
224  } else if ( fFission == ((*pv)[i])->GetProcessSubType() ) {
225  fission = static_cast<G4HadronicProcess*>((*pv)[i]);
226  }
227  }
228  if ( ! capture ) {
229  capture = new G4HadronCaptureProcess("nCapture");
230  pmanager->AddDiscreteProcess(capture);
231  }
232  xsNeutronCaptureXS = new G4NeutronCaptureXS();
233  capture->AddDataSet(xsNeutronCaptureXS);
234  capture->RegisterMe(new G4NeutronRadCapture());
235  if ( ! fission ) {
236  fission = new G4HadronFissionProcess("nFission");
237  pmanager->AddDiscreteProcess(fission);
238  }
239  fission->RegisterMe(new G4LFission());
240 
241 }
242