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G4StatMFMacroTriNucleon.cc
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27 // $Id$
28 //
29 // Hadronic Process: Nuclear De-excitations
30 // by V. Lara
31 
33 #include "G4PhysicalConstants.hh"
34 #include "G4SystemOfUnits.hh"
35 
36 // Operators
37 
38 G4StatMFMacroTriNucleon & G4StatMFMacroTriNucleon::
39 operator=(const G4StatMFMacroTriNucleon & )
40 {
41  throw G4HadronicException(__FILE__, __LINE__, "G4StatMFMacroTriNucleon::operator= meant to not be accessable");
42  return *this;
43 }
44 
45 
46 G4bool G4StatMFMacroTriNucleon::operator==(const G4StatMFMacroTriNucleon & ) const
47 {
48  throw G4HadronicException(__FILE__, __LINE__, "G4StatMFMacroTriNucleon::operator== meant to not be accessable");
49  return false;
50 }
51 
52 
53 G4bool G4StatMFMacroTriNucleon::operator!=(const G4StatMFMacroTriNucleon & ) const
54 {
55  throw G4HadronicException(__FILE__, __LINE__, "G4StatMFMacroTriNucleon::operator!= meant to not be accessable");
56  return true;
57 }
58 
59 
60 
62  const G4double nu, const G4double T)
63 {
64  const G4double ThermalWaveLenght = 16.15*fermi/std::sqrt(T);
65 
66  const G4double lambda3 = ThermalWaveLenght*ThermalWaveLenght*ThermalWaveLenght;
67 
68  const G4double degeneracy = 2.0+2.0; // H3 + He3
69 
70  const G4double Coulomb = (3./5.)*(elm_coupling/G4StatMFParameters::Getr0())*
71  (1.0 - 1.0/std::pow(1.0+G4StatMFParameters::GetKappaCoulomb(),1./3.));
72 
73  const G4double BindingE = G4NucleiProperties::GetBindingEnergy(theA,1); // old value was 9.224*MeV
74 // + G4NucleiProperties::GetBindingEnergy(theA,2);
75 
76  G4double exponent = (BindingE+ theA*(mu+nu*theZARatio) -
77  Coulomb*theZARatio*theZARatio*std::pow(static_cast<G4double>(theA),5./3.))/T;
78  if (exponent > 700.0) exponent = 700.0;
79 
80  _MeanMultiplicity = (degeneracy*FreeVol*static_cast<G4double>(theA)*
81  std::sqrt(static_cast<G4double>(theA))/lambda3)*
82  std::exp(exponent);
83 
84  return _MeanMultiplicity;
85 }
86 
87 
89 {
90  const G4double Coulomb = (3./5.)*(elm_coupling/G4StatMFParameters::Getr0())*
91  (1.0 - 1.0/std::pow(1.0+G4StatMFParameters::GetKappaCoulomb(),1./3.));
92 
94  Coulomb * theZARatio * theZARatio * std::pow(static_cast<G4double>(theA),5./3.) +
95  (3./2.) * T;
96 
97 }
98 
99 
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  Entropy = _MeanMultiplicity*(5./2.+
108  std::log(4.0*static_cast<G4double>(theA)*
109  std::sqrt(static_cast<G4double>(theA))*FreeVol/(lambda3*_MeanMultiplicity)));
110 
111 
112  return Entropy;
113 }