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2025-12-05 08:54:02 +01:00

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//
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// Hadronic Process: Nuclear De-excitations
// by V. Lara
//
// Modification: 13.08.2025 V.Ivanchenko rewrite
#ifndef G4StatMFMacroTemperature_h
#define G4StatMFMacroTemperature_h 1
#include <vector>
#include "globals.hh"
#include "G4VStatMFMacroCluster.hh"
#include "G4FunctionSolver.hh"
class G4StatMFMacroChemicalPotential;
class G4StatMFMacroTemperature {
public:
G4StatMFMacroTemperature();
~G4StatMFMacroTemperature();
void Initialise(const G4int anA, const G4int aZ,
const G4double ExEnergy, const G4double FreeE0,
const G4double kappa,
std::vector<G4VStatMFMacroCluster*>* ClusterVector);
G4double Function(G4double T)
{ return (fExEnergy - FragsExcitEnergy(T)); }
// copy constructor
G4StatMFMacroTemperature(const G4StatMFMacroTemperature&) = delete;
G4StatMFMacroTemperature& operator=
(const G4StatMFMacroTemperature& right) = delete;
G4bool operator==(const G4StatMFMacroTemperature& right) const = delete;
G4bool operator!=(const G4StatMFMacroTemperature& right) const = delete;
G4double GetMeanMultiplicity(void) const {return fMeanMultiplicity;}
G4double GetChemicalPotentialMu(void) const {return fChemPotentialMu;}
G4double GetChemicalPotentialNu(void) const {return fChemPotentialNu;}
G4double GetTemperature(void) const {return fMeanTemperature;}
G4double GetEntropy(void) const {return fMeanEntropy;}
G4double CalcTemperature(void);
private:
G4double FragsExcitEnergy(const G4double T);
void CalcChemicalPotentialNu(const G4double T);
G4FunctionSolver<G4StatMFMacroTemperature>* fSolver;
G4StatMFMacroChemicalPotential* theChemPot;
G4int theA{0};
G4int theZ{0};
G4double fExEnergy{0.0};
G4double fFreeInternalE0{0.0};
G4double fKappa{0.0};
G4double fMeanMultiplicity{0.0};
G4double fMeanTemperature{0.0};
G4double fChemPotentialMu{0.0};
G4double fChemPotentialNu{0.0};
G4double fMeanEntropy{0.0};
std::vector<G4VStatMFMacroCluster*>* fClusters{nullptr};
};
#endif