Import Geant4 6.0.0 source tree
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//
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// ********************************************************************
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// * DISCLAIMER *
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// * *
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// * The following disclaimer summarizes all the specific disclaimers *
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// * of contributors to this software. The specific disclaimers,which *
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// * govern, are listed with their locations in: *
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// * http://cern.ch/geant4/license *
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// * *
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// * Neither the authors of this software system, nor their employing *
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// * institutes,nor the agencies providing financial support for this *
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// * work make any representation or warranty, express or implied, *
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// * regarding this software system or assume any liability for its *
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// * use. *
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// * *
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// * This code implementation is the intellectual property of the *
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// * GEANT4 collaboration. *
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// * By copying, distributing or modifying the Program (or any work *
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// * based on the Program) you indicate your acceptance of this *
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// * statement, and all its terms. *
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// ********************************************************************
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//
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//
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// $Id: G4ExcitationHandler.hh,v 1.4 2003/10/07 12:54:01 lara Exp $
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// GEANT4 tag $Name: geant4-06-00 $
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//
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// Hadronic Process: Nuclear De-excitations
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// by V. Lara (May 1998)
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// Modif (30 June 1998) by V. Lara:
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// -Using G4ParticleTable and therefore G4IonTable
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// it can return all kind of fragments produced in
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// deexcitation
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// -It uses default algorithms for:
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// Evaporation: G4StatEvaporation
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// MultiFragmentation: G4DummyMF (a dummy one)
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// Fermi Breakup model: G4StatFermiBreakUp
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#ifndef G4ExcitationHandler_h
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#define G4ExcitationHandler_h 1
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#include "G4VMultiFragmentation.hh"
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#include "G4VFermiBreakUp.hh"
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#include "G4VEvaporation.hh"
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#include "G4VPhotonEvaporation.hh"
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#include "G4Fragment.hh"
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#include "G4DynamicParticle.hh"
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#include "G4ReactionProductVector.hh"
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#include "G4ReactionProduct.hh"
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#include "G4ParticleTypes.hh"
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#include "G4ParticleTable.hh"
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// needed for default models
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#include "G4Evaporation.hh"
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#include "G4StatMF.hh"
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#include "G4FermiBreakUp.hh"
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#include "G4PhotonEvaporation.hh"
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#include "G4IonConstructor.hh"
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//#define debug
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class G4ExcitationHandler
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{
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public:
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G4ExcitationHandler();
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~G4ExcitationHandler();
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private:
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G4ExcitationHandler(const G4ExcitationHandler &right);
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const G4ExcitationHandler & operator=(const G4ExcitationHandler &right);
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G4bool operator==(const G4ExcitationHandler &right) const;
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G4bool operator!=(const G4ExcitationHandler &right) const;
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public:
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G4ReactionProductVector * BreakItUp(const G4Fragment &theInitialState) const;
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void SetEvaporation(G4VEvaporation *const value);
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void SetMultiFragmentation(G4VMultiFragmentation *const value);
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void SetFermiModel(G4VFermiBreakUp *const value);
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void SetPhotonEvaporation(G4VPhotonEvaporation * const value);
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void SetMaxZForFermiBreakUp(G4int aZ);
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void SetMaxAForFermiBreakUp(G4int anA);
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void SetMaxAandZForFermiBreakUp(G4int anA,G4int aZ);
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void SetMinEForMultiFrag(G4double anE);
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private:
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G4ReactionProductVector * Transform(G4FragmentVector * theFragmentVector) const;
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const G4VEvaporation * GetEvaporation() const;
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const G4VMultiFragmentation * GetMultiFragmentation() const;
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const G4VFermiBreakUp * GetFermiModel() const;
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const G4VPhotonEvaporation * GetPhotonEvaporation() const;
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const G4int GetMaxZ() const;
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const G4int GetMaxA() const;
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const G4double GetMinE() const;
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#ifdef debug
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void CheckConservation(const G4Fragment & aFragment,
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G4FragmentVector * Result) const;
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#endif
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private:
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G4VEvaporation *theEvaporation;
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G4VMultiFragmentation *theMultiFragmentation;
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G4VFermiBreakUp *theFermiModel;
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G4VPhotonEvaporation * thePhotonEvaporation;
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G4int maxZForFermiBreakUp;
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G4int maxAForFermiBreakUp;
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G4double minEForMultiFrag;
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G4ParticleTable *theTableOfParticles;
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G4bool MyOwnEvaporationClass;
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G4bool MyOwnMultiFragmentationClass;
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G4bool MyOwnFermiBreakUpClass;
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G4bool MyOwnPhotonEvaporationClass;
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struct DeleteFragment
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{
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template<typename T>
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void operator()(const T* ptr) const
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{
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delete ptr;
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}
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};
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};
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inline const G4VEvaporation * G4ExcitationHandler::GetEvaporation() const
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{
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return theEvaporation;
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}
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inline void G4ExcitationHandler::SetEvaporation(G4VEvaporation *const value)
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{
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if (theEvaporation != 0 && MyOwnEvaporationClass) delete theEvaporation;
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MyOwnEvaporationClass = false;
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theEvaporation = value;
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}
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inline const G4VMultiFragmentation * G4ExcitationHandler::GetMultiFragmentation() const
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{
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return theMultiFragmentation;
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}
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inline void G4ExcitationHandler::SetMultiFragmentation(G4VMultiFragmentation *const value)
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{
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if (theMultiFragmentation != 0 && MyOwnMultiFragmentationClass) delete theMultiFragmentation;
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MyOwnMultiFragmentationClass = false;
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theMultiFragmentation = value;
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}
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inline const G4VFermiBreakUp * G4ExcitationHandler::GetFermiModel() const
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{
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return theFermiModel;
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}
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inline void G4ExcitationHandler::SetFermiModel(G4VFermiBreakUp *const value)
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{
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if (theFermiModel != 0 && MyOwnFermiBreakUpClass) delete theFermiModel;
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MyOwnFermiBreakUpClass = false;
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theFermiModel = value;
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}
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inline const G4VPhotonEvaporation * G4ExcitationHandler::GetPhotonEvaporation() const
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{
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return thePhotonEvaporation;
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}
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inline void G4ExcitationHandler::SetPhotonEvaporation(G4VPhotonEvaporation *const value)
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{
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if (thePhotonEvaporation != 0 && MyOwnPhotonEvaporationClass) delete thePhotonEvaporation;
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MyOwnPhotonEvaporationClass = false;
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thePhotonEvaporation = value;
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}
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inline void G4ExcitationHandler::SetMaxZForFermiBreakUp(G4int aZ)
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{
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maxZForFermiBreakUp = aZ;
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}
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inline void G4ExcitationHandler::SetMaxAForFermiBreakUp(G4int anA)
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{
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maxAForFermiBreakUp = anA;
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}
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inline void G4ExcitationHandler::SetMaxAandZForFermiBreakUp(G4int anA, G4int aZ)
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{
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maxAForFermiBreakUp = anA;
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maxZForFermiBreakUp = aZ;
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}
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inline void G4ExcitationHandler::SetMinEForMultiFrag(G4double anE)
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{
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minEForMultiFrag = anE;
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}
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inline const G4int G4ExcitationHandler::GetMaxZ() const
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{
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return maxZForFermiBreakUp;
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}
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inline const G4int G4ExcitationHandler::GetMaxA() const
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{
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return maxAForFermiBreakUp;
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}
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inline const G4double G4ExcitationHandler::GetMinE() const
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{
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return minEForMultiFrag;
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}
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#endif
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