Geant4  9.6.p02
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G4PreCompoundModel.hh
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25 //
26 // $Id$
27 //
28 // by V. Lara
29 //
30 // Class Description
31 // Model implementation for pre-equilibrium decay models in geant4.
32 // To be used in your physics list, in case you neeed this kind of physics.
33 // Can be used as a stand-allone model, but also in conjunction with an intra-nuclear
34 // transport, or any of the string-parton models.
35 // Class Description - End
36 //
37 // Modified:
38 // 03.09.2008 J.M.Quesada added external choice of inverse
39 // cross section option.(default OPTxs=3)
40 // 06.09.2008 J.M.Quesada external choices have been added for:
41 // - superimposed Coulomb barrier (if useSICB=true, default false)
42 // - "never go back" hipothesis (if useNGB=true, default false)
43 // - soft cutoff from preeq. to equlibrium (if useSCO=true, default false)
44 // - CEM transition probabilities (if useCEMtr=true)
45 // 30.10.2009 J.M.Quesada CEM transition probabilities are set as default
46 // 20.08.2010 V.Ivanchenko Cleanup of the code - changed data members and inline methods
47 // 03.01.2012 V.Ivanchenko Added pointer to G4ExcitationHandler to the
48 // constructor
49 
50 #ifndef G4PreCompoundModel_h
51 #define G4PreCompoundModel_h 1
52 
53 #include "G4VPreCompoundModel.hh"
54 #include "G4Fragment.hh"
56 #include "G4ReactionProduct.hh"
57 #include "G4ExcitationHandler.hh"
58 
63 
65 {
66 public:
67 
69 
70  virtual ~G4PreCompoundModel();
71 
72  virtual G4HadFinalState * ApplyYourself(const G4HadProjectile & thePrimary,
73  G4Nucleus & theNucleus);
74 
75  virtual G4ReactionProductVector* DeExcite(G4Fragment& aFragment);
76 
77  virtual void ModelDescription(std::ostream& outFile) const;
78 
79  void UseHETCEmission();
80  void UseDefaultEmission();
81  void UseGNASHTransition();
82  void UseDefaultTransition();
83 
84  //for cross section selection
85  void SetOPTxs(G4int opt);
86 
87  //for the rest of external choices
88  void UseSICB();
89  void UseNGB();
90  void UseSCO();
91  void UseCEMtr();
92 
93 private:
94 
95  inline
96  void PerformEquilibriumEmission(const G4Fragment & aFragment,
97  G4ReactionProductVector * theResult) const;
98 
99  // G4PreCompoundModel();
101  const G4PreCompoundModel& operator=(const G4PreCompoundModel &right);
102  G4bool operator==(const G4PreCompoundModel &right) const;
103  G4bool operator!=(const G4PreCompoundModel &right) const;
104 
105  //==============
106  // Data Members
107  //==============
108 
109  G4PreCompoundParameters* theParameters;
110  G4PreCompoundEmission* theEmission;
111  G4VPreCompoundTransitions* theTransition;
112 
113  const G4ParticleDefinition* proton;
114  const G4ParticleDefinition* neutron;
115 
116  G4bool useHETCEmission;
117  G4bool useGNASHTransition;
118 
119  //for cross section options
120  G4int OPTxs;
121 
122  //for the rest of external choices
123  G4bool useSICB;
124  G4bool useNGB;
125  G4bool useSCO;
126  G4bool useCEMtr;
127 
128  G4int maxZ;
129  G4int maxA;
130 
131  G4HadFinalState theResult;
132 
133 };
134 
135 inline void
136 G4PreCompoundModel::PerformEquilibriumEmission(const G4Fragment & aFragment,
137  G4ReactionProductVector * Result) const
138 {
139  G4ReactionProductVector* theEquilibriumResult =
140  GetExcitationHandler()->BreakItUp(aFragment);
141  Result->insert(Result->end(),theEquilibriumResult->begin(), theEquilibriumResult->end());
142  delete theEquilibriumResult;
143 }
144 
145 #endif
146