source: trunk/source/processes/hadronic/management/include/G4HadronicProcess.hh @ 1340

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25//
26// $Id: G4HadronicProcess.hh,v 1.42 2010/07/05 14:50:15 vnivanch Exp $
27// GEANT4 tag $Name: hadr-man-V09-03-04 $
28//
29// -------------------------------------------------------------------
30//
31// GEANT4 Class header file
32//
33// G4HadronicProcess
34//
35// This is the top level Hadronic Process class
36// The inelastic, elastic, capture, and fission processes
37// should derive from this class
38//
39// original by H.P.Wellisch
40// J.L. Chuma, TRIUMF, 10-Mar-1997
41// Last modified: 04-Apr-1997
42// 19-May-2008 V.Ivanchenko cleanup and added comments
43// 05-Jul-2010 V.Ivanchenko cleanup commented lines
44//
45
46#ifndef G4HadronicProcess_h
47#define G4HadronicProcess_h 1
48 
49#include "globals.hh"
50#include "G4VDiscreteProcess.hh"
51#include "G4EnergyRangeManager.hh"
52#include "G4Nucleus.hh"
53#include "G4ReactionProduct.hh"
54#include <vector>
55#include "G4VIsotopeProduction.hh"
56#include "G4IsoParticleChange.hh"
57#include "G4VCrossSectionDataSet.hh"
58#include "G4VLeadingParticleBiasing.hh"
59
60#include "G4CrossSectionDataStore.hh"
61#include "G4HadronicProcessType.hh"
62
63class G4Track;
64class G4Step;
65class G4Element;
66class G4ParticleChange;
67
68
69class G4HadronicProcess : public G4VDiscreteProcess
70{
71public:
72   
73  G4HadronicProcess(const G4String& processName = "Hadronic", 
74                    G4ProcessType aType = fHadronic);   
75
76  virtual ~G4HadronicProcess();
77
78  // register generator of secondaries
79  void RegisterMe(G4HadronicInteraction* a);
80
81  // get cross section per element
82  virtual 
83  G4double GetMicroscopicCrossSection(const G4DynamicParticle *aParticle, 
84                                      const G4Element *anElement, 
85                                      G4double aTemp );
86
87  // generic PostStepDoIt recommended for all derived classes
88  virtual G4VParticleChange* PostStepDoIt(const G4Track& aTrack, 
89                                          const G4Step& aStep);
90
91  // initialisation of physics tables and G4HadronicProcessStore
92  virtual void PreparePhysicsTable(const G4ParticleDefinition&);
93
94  // build physics tables and print out the configuration of the process
95  virtual void BuildPhysicsTable(const G4ParticleDefinition&);
96
97  // dump physics tables
98  inline void DumpPhysicsTable(const G4ParticleDefinition& p)
99  { theCrossSectionDataStore->DumpPhysicsTable(p); }
100
101  // add cross section data set
102  inline void AddDataSet(G4VCrossSectionDataSet * aDataSet)
103  { theCrossSectionDataStore->AddDataSet(aDataSet);}
104
105  // access to the manager
106  inline G4EnergyRangeManager *GetManagerPointer()
107  { return &theEnergyRangeManager; }
108         
109  // get inverse cross section per volume
110  G4double GetMeanFreePath(const G4Track &aTrack, G4double, 
111                           G4ForceCondition *);
112
113protected:   
114
115  // reset number of interaction length and save 
116  virtual void ResetNumberOfInteractionLengthLeft()
117  { G4VProcess::ResetNumberOfInteractionLengthLeft(); 
118    theInitialNumberOfInteractionLength = 
119      G4VProcess::theNumberOfInteractionLengthLeft;
120  }
121
122  // generic method to choose secondary generator
123  // recommended for all derived classes
124  inline G4HadronicInteraction *ChooseHadronicInteraction(
125      G4double kineticEnergy, G4Material *aMaterial, G4Element *anElement )
126  { return theEnergyRangeManager.GetHadronicInteraction(kineticEnergy,
127                                                        aMaterial,anElement);
128  }
129
130public:
131
132  // Methods for isotope production   
133  static void EnableIsotopeProductionGlobally();
134  static void DisableIsotopeProductionGlobally();
135   
136  void EnableIsotopeCounting()  {isoIsOnAnyway = 1;}
137  void DisableIsotopeCounting() {isoIsOnAnyway = -1;}
138   
139  void RegisterIsotopeProductionModel(G4VIsotopeProduction * aModel)
140  { theProductionModels.push_back(aModel); }
141
142  static G4IsoParticleChange * GetIsotopeProductionInfo();
143
144  void BiasCrossSectionByFactor(G4double aScale);
145
146  // Energy-momentum non-conservation limits and reporting
147  inline void SetEpReportLevel(G4int level)
148  { epReportLevel = level; }
149
150  inline void SetEnergyMomentumCheckLevels(G4double relativeLevel, G4double absoluteLevel)
151  { epCheckLevels.first = relativeLevel;
152    epCheckLevels.second = absoluteLevel;
153    levelsSetByProcess = true;
154  }
155
156  inline std::pair<G4double, G4double> GetEnergyMomentumCheckLevels() const
157  { return epCheckLevels; }
158
159protected:
160           
161  // obsolete method will be removed
162  inline const G4EnergyRangeManager &GetEnergyRangeManager() const
163  { return theEnergyRangeManager; }
164   
165  // obsolete method will be removed
166  inline void SetEnergyRangeManager( const G4EnergyRangeManager &value )
167  { theEnergyRangeManager = value; }
168
169  // access to the chosen generator
170  inline G4HadronicInteraction *GetHadronicInteraction()
171  { return theInteraction; }
172   
173  // access to the cross section data store
174  inline G4CrossSectionDataStore* GetCrossSectionDataStore()
175  { return theCrossSectionDataStore; }
176   
177  // access to the cross section data set
178  inline G4double GetLastCrossSection() 
179  { return theLastCrossSection; }
180
181private:
182
183  void DumpState(const G4Track&, const G4String&);
184   
185  void FillTotalResult(G4HadFinalState * aR, const G4Track & aT);
186
187  G4HadFinalState * DoIsotopeCounting(G4HadFinalState * aResult,
188                                      const G4Track & aTrack,
189                                      const G4Nucleus & aNucleus);
190                                         
191  G4IsoResult * ExtractResidualNucleus(const G4Track & aTrack,
192                                       const G4Nucleus & aNucleus,
193                                       G4HadFinalState * aResult);
194
195  inline G4double GetTotalNumberOfInteractionLengthTraversed()
196  { return theInitialNumberOfInteractionLength
197      -G4VProcess::theNumberOfInteractionLengthLeft;
198  }
199           
200  G4double XBiasSurvivalProbability();
201  G4double XBiasSecondaryWeight();
202
203  void CheckEnergyMomentumConservation(const G4Track&, const G4Nucleus&);
204   
205private:
206   
207  G4EnergyRangeManager theEnergyRangeManager;
208   
209  G4HadronicInteraction *theInteraction;
210
211  G4CrossSectionDataStore* theCrossSectionDataStore;
212 
213  G4Nucleus targetNucleus;
214   
215  G4HadronicProcess *dispatch;
216
217  bool G4HadronicProcess_debug_flag;
218
219  // Energy-momentum checking
220  G4int epReportLevel;
221  std::pair<G4double, G4double> epCheckLevels;
222  G4bool levelsSetByProcess;
223
224  // swiches for isotope production   
225  static G4bool isoIsEnabled; // true or false; local swich overrides
226  G4int isoIsOnAnyway; // true(1), false(-1) or default(0)
227   
228  G4IsoParticleChange theIsoPC;
229  std::vector<G4VIsotopeProduction *> theProductionModels;
230   
231  std::vector<G4VLeadingParticleBiasing *> theBias;
232
233  static G4IsoParticleChange* theIsoResult;
234  static G4IsoParticleChange* theOldIsoResult;
235   
236  G4ParticleChange* theTotalResult; 
237   
238  G4double theInitialNumberOfInteractionLength;   
239
240  G4double aScaleFactor;
241  G4bool xBiasOn;
242  G4double theLastCrossSection;
243
244  G4int ModelingState;
245};
246 
247#endif
248 
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