Geant4  10.02.p02
G4HadronPhysicsFTFP_BERT_ATL.cc
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26 // $Id:$
27 //
28 //---------------------------------------------------------------------------
29 // Author: Alberto Ribon
30 // Date: April 2016
31 //
32 // Hadron physics for the new physics list FTFP_BERT_ATL.
33 // This is a modified version of the FTFP_BERT hadron physics for ATLAS.
34 // The hadron physics of FTFP_BERT_ATL has the transition between Bertini
35 // (BERT) intra-nuclear cascade model and Fritiof (FTF) string model in the
36 // energy region [9, 12] GeV (instead of [4, 5] GeV as in FTFP_BERT).
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"
52 
56 #include "G4NeutronRadCapture.hh"
57 #include "G4NeutronInelasticXS.hh"
58 #include "G4NeutronCaptureXS.hh"
59 
61 
62 #include "G4PhysListUtil.hh"
63 
64 // factory
66 //
68 
70 
72  : G4VPhysicsConstructor("hInelastic FTFP_BERT_ATL")
73 /* , theNeutrons(0)
74  , theBertiniNeutron(0)
75  , theFTFPNeutron(0)
76  , thePiK(0)
77  , theBertiniPiK(0)
78  , theFTFPPiK(0)
79  , thePro(0)
80  , theBertiniPro(0)
81  , theFTFPPro(0)
82  , theHyperon(0)
83  , theAntiBaryon(0)
84  , theFTFPAntiBaryon(0) */
85  , QuasiElastic(false)
86  /*, xsKaon(0)
87  , xsNeutronInelasticXS(0)
88  , xsNeutronCaptureXS(0)*/
89 {}
90 
92  : G4VPhysicsConstructor(name)
93 /* , theNeutrons(0)
94  , theBertiniNeutron(0)
95  , theFTFPNeutron(0)
96  , thePiK(0)
97  , theBertiniPiK(0)
98  , theFTFPPiK(0)
99  , thePro(0)
100  , theBertiniPro(0)
101  , theFTFPPro(0)
102  , theHyperon(0)
103  , theAntiBaryon(0)
104  , theFTFPAntiBaryon(0)*/
105  , QuasiElastic(quasiElastic)
106  /*, xsKaonMinus(0)
107  , xsNeutronInelasticXS(0)
108  , xsNeutronCaptureXS(0)*/
109 {}
110 
112 {
113  G4double minFTFP = 9.0 * GeV;
114  G4double maxBERT = 12.0 * GeV;
115  G4cout << " FTFP_BERT_ATL : new threshold between BERT and FTFP"
116  << " is over the interval " << minFTFP/GeV << " to " << maxBERT/GeV
117  << " GeV." << G4endl;
118  QuasiElastic= false;
119 
126 
129  tpdata->theFTFPPro->SetMinEnergy(minFTFP);
131  tpdata->theBertiniPro->SetMaxEnergy(maxBERT);
132 
135  tpdata->theFTFPPiK->SetMinEnergy(minFTFP);
137  tpdata->theBertiniPiK->SetMaxEnergy(maxBERT);
138 
140 
143 }
144 
146 {
147  if (!tpdata) return;
148 
149  delete tpdata->theNeutrons;
150  delete tpdata->theBertiniNeutron;
151  delete tpdata->theFTFPNeutron;
152 
153  delete tpdata->thePiK;
154  delete tpdata->theBertiniPiK;
155  delete tpdata->theFTFPPiK;
156 
157  delete tpdata->thePro;
158  delete tpdata->theBertiniPro;
159  delete tpdata->theFTFPPro;
160 
161  delete tpdata->theHyperon;
162  delete tpdata->theAntiBaryon;
163  delete tpdata->theFTFPAntiBaryon;
164 
165  //Note that here we need to set to 0 the pointer
166  //since tpdata is static and if thread are "reused"
167  //it can be problematic
168  delete tpdata; tpdata = 0;
169 }
170 
172 {
173  G4MesonConstructor pMesonConstructor;
174  pMesonConstructor.ConstructParticle();
175 
176  G4BaryonConstructor pBaryonConstructor;
177  pBaryonConstructor.ConstructParticle();
178 
179  G4ShortLivedConstructor pShortLivedConstructor;
180  pShortLivedConstructor.ConstructParticle();
181 }
182 
183 #include "G4ProcessManager.hh"
185 {
186  if ( tpdata == 0 ) tpdata = new ThreadPrivate;
187  CreateModels();
189  tpdata->thePro->Build();
190  tpdata->thePiK->Build();
191 
192  // --- Kaons ---
199 
200  tpdata->theHyperon->Build();
202 
203  // --- Neutrons ---
206 
207  G4HadronicProcess* capture = 0;
209  G4ProcessVector* pv = pmanager->GetProcessList();
210  for ( size_t i=0; i < static_cast<size_t>(pv->size()); ++i ) {
211  if ( fCapture == ((*pv)[i])->GetProcessSubType() ) {
212  capture = static_cast<G4HadronicProcess*>((*pv)[i]);
213  }
214  }
215  if ( ! capture ) {
216  capture = new G4HadronCaptureProcess("nCapture");
217  pmanager->AddDiscreteProcess(capture);
218  }
221  capture->RegisterMe(new G4NeutronRadCapture());
222 }
G4VCrossSectionDataSet * GetCrossSectionDataSet(const G4String &name, G4bool warning=true)
G4String name
Definition: TRTMaterials.hh:40
G4int AddDiscreteProcess(G4VProcess *aProcess, G4int ord=ordDefault)
static G4KaonZeroLong * KaonZeroLong()
void SetMinEnergy(G4double aM)
static const char * Default_Name()
static void ConstructParticle()
#define G4ThreadLocal
Definition: tls.hh:89
static void ConstructParticle()
G4ProcessManager * GetProcessManager() const
int G4int
Definition: G4Types.hh:78
static G4KaonMinus * KaonMinus()
Definition: G4KaonMinus.cc:113
void RegisterMe(G4HadronicInteraction *a)
static G4HadronicProcess * FindInelasticProcess(const G4ParticleDefinition *)
void AddDataSet(G4VCrossSectionDataSet *aDataSet)
G4_DECLARE_PHYSCONSTR_FACTORY(G4HadronPhysicsFTFP_BERT_ATL)
G4GLOB_DLL std::ostream G4cout
void SetMinEnergy(G4double aM)
static G4KaonZeroShort * KaonZeroShort()
bool G4bool
Definition: G4Types.hh:79
static G4CrossSectionDataSetRegistry * Instance()
void SetMaxEnergy(G4double aM)
static G4ThreadLocal ThreadPrivate * tpdata
static const double GeV
Definition: G4SIunits.hh:214
static G4Neutron * Neutron()
Definition: G4Neutron.cc:104
void SetMinEnergy(G4double aM)
G4int size() const
static const char * Default_Name()
void RegisterMe(G4VAntiBarionBuilder *aB)
void RegisterMe(G4VPiKBuilder *aB)
Definition: G4PiKBuilder.hh:58
void RegisterMe(G4VProtonBuilder *aB)
#define G4endl
Definition: G4ios.hh:61
void RegisterMe(G4VNeutronBuilder *aB)
double G4double
Definition: G4Types.hh:76
static G4KaonPlus * KaonPlus()
Definition: G4KaonPlus.cc:113
G4ProcessVector * GetProcessList() const