source: trunk/source/processes/hadronic/models/de_excitation/multifragmentation/src/G4StatMFMacroBiNucleon.cc @ 1340

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27// $Id: G4StatMFMacroBiNucleon.cc,v 1.7 2008/10/24 22:56:42 dennis Exp $
28// GEANT4 tag $Name: geant4-09-03-ref-09 $
29//
30// Hadronic Process: Nuclear De-excitations
31// by V. Lara
32
33#include "G4StatMFMacroBiNucleon.hh"
34
35// Operators
36
37G4StatMFMacroBiNucleon & G4StatMFMacroBiNucleon::
38operator=(const G4StatMFMacroBiNucleon & )
39{
40    throw G4HadronicException(__FILE__, __LINE__, "G4StatMFMacroBiNucleon::operator= meant to not be accessable");
41    return *this;
42}
43
44
45G4bool G4StatMFMacroBiNucleon::operator==(const G4StatMFMacroBiNucleon & ) const
46{
47    throw G4HadronicException(__FILE__, __LINE__, "G4StatMFMacroBiNucleon::operator== meant to not be accessable");
48    return false;
49}
50 
51
52G4bool G4StatMFMacroBiNucleon::operator!=(const G4StatMFMacroBiNucleon & ) const
53{
54    throw G4HadronicException(__FILE__, __LINE__, "G4StatMFMacroBiNucleon::operator!= meant to not be accessable");
55    return true;
56}
57
58
59G4double G4StatMFMacroBiNucleon::CalcMeanMultiplicity(const G4double FreeVol, const G4double mu, 
60                                                      const G4double nu, const G4double T)
61{
62    const G4double ThermalWaveLenght = 16.15*fermi/std::sqrt(T);
63       
64    const G4double lambda3 = ThermalWaveLenght*ThermalWaveLenght*ThermalWaveLenght;
65   
66    const G4double degeneracy = 3.0;
67   
68    const G4double Coulomb = (3./5.)*(elm_coupling/G4StatMFParameters::Getr0())*
69        (1.0 - 1.0/std::pow(1.0+G4StatMFParameters::GetKappaCoulomb(),1./3.));
70   
71    const G4double BindingE = G4NucleiProperties::GetBindingEnergy(theA,1); //old value was 2.796*MeV
72    G4double exponent = (BindingE + theA*(mu+nu*theZARatio) - 
73                         Coulomb*theZARatio*theZARatio*std::pow(G4double(theA),5./3.))/T;
74
75    // To avoid numerical problems
76    if (exponent < -700.0) exponent = -700.0;
77    else if (exponent > 700.0) exponent = 700.0;
78
79    _MeanMultiplicity = (degeneracy*FreeVol*static_cast<G4double>(theA)*std::sqrt(static_cast<G4double>(theA))/lambda3)*
80        std::exp(exponent);
81                         
82    return _MeanMultiplicity;
83}
84
85
86G4double G4StatMFMacroBiNucleon::CalcEnergy(const G4double T)
87{
88    const G4double Coulomb = (3./5.)*(elm_coupling/G4StatMFParameters::Getr0())*
89        (1.0 - 1.0/std::pow(1.0+G4StatMFParameters::GetKappaCoulomb(),1./3.));
90                                                                       
91    _Energy  = -G4NucleiProperties::GetBindingEnergy(theA,1) + 
92        Coulomb * theZARatio * theZARatio * std::pow(G4double(theA),5./3.) +
93        (3./2.) * T;
94                                                       
95    return      _Energy;                               
96}
97
98
99
100G4double G4StatMFMacroBiNucleon::CalcEntropy(const G4double T, const G4double FreeVol)
101{
102    const G4double ThermalWaveLenght = 16.15*fermi/std::sqrt(T);
103    const G4double lambda3 = ThermalWaveLenght*ThermalWaveLenght*ThermalWaveLenght;
104
105    G4double Entropy = 0.0;
106    if (_MeanMultiplicity > 0.0)
107        // Is this formula correct?
108        Entropy = _MeanMultiplicity*(5./2.+
109                                     std::log(3.0*static_cast<G4double>(theA)*
110                                         std::sqrt(static_cast<G4double>(theA))*FreeVol/
111                                         (lambda3*_MeanMultiplicity)));
112                                                               
113                                                               
114    return Entropy;
115}
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