source: trunk/source/processes/hadronic/cross_sections/src/G4IonsKoxCrossSection.cc@ 1340

Last change on this file since 1340 was 1340, checked in by garnier, 15 years ago

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[819]1//
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24// ********************************************************************
25//
26// 18-Sep-2003 First version is written by T. Koi
27// 10-Nov-2003 Bug fix at Cal. ke_per_n and D T. Koi
28// 12-Nov-2003 Add energy check at lower side T. Koi
29// 26-Dec-2006 Add isotope dependence D. Wright
30
31#include "G4IonsKoxCrossSection.hh"
32#include "G4ParticleTable.hh"
33#include "G4IonTable.hh"
[1340]34#include "G4HadTmpUtil.hh"
[819]35
36G4double G4IonsKoxCrossSection::
[1340]37GetZandACrossSection(const G4DynamicParticle* aParticle, G4int ZZ,
38 G4int AA, G4double /*temperature*/)
[819]39{
40 G4double xsection = 0.0;
41
42 G4int Ap = aParticle->GetDefinition()->GetBaryonNumber();
[1340]43 G4int Zp = G4int(aParticle->GetDefinition()->GetPDGCharge() / eplus + 0.5);
[819]44 G4double ke_per_N = aParticle->GetKineticEnergy() / Ap;
45
46// Apply energy check, if less than lower limit then 0 value is returned
[1055]47 // if ( ke_per_N < lowerLimit ) return xsection;
[819]48
[1340]49 G4int At = AA;
50 G4int Zt = ZZ;
[819]51
52 G4double one_third = 1.0 / 3.0;
53
54 G4double cubicrAt = std::pow ( G4double(At) , G4double(one_third) );
55 G4double cubicrAp = std::pow ( G4double(Ap) , G4double(one_third) );
56
[1340]57 // rc divide fermi
58 G4double Bc = Zt * Zp / ( (rc/fermi) * (cubicrAp+cubicrAt) );
[819]59
[1340]60 G4double targ_mass =
61 G4ParticleTable::GetParticleTable()->GetIonTable()->GetIonMass(Zt, At);
62 G4double proj_mass = aParticle->GetMass();
[1055]63 G4double proj_momentum = aParticle->GetMomentum().mag();
[819]64
[1055]65 G4double Ecm = calEcm ( proj_mass , targ_mass , proj_momentum );
66 if( Ecm <= Bc) return xsection;
67
[819]68 G4double Rvol = r0 * ( cubicrAp + cubicrAt );
69
70// G4double ke_per_N = aParticle->GetKineticEnergy() / Ap;
71 G4double c = calCeValue ( ke_per_N / MeV );
72
73 G4double a = 1.85;
[1340]74 G4double Rsurf = r0 * (a*cubicrAp * cubicrAt/(cubicrAp + cubicrAt) - c);
[819]75 G4double D = 5.0 * ( At - 2 * Zt ) * Zp / ( Ap * At );
76 Rsurf = Rsurf + D * fermi; // multiply D by fermi
77
78 G4double Rint = Rvol + Rsurf;
79 xsection = pi * Rint * Rint * ( 1 - Bc / ( Ecm / MeV ) );
80
81 return xsection;
82}
83
[1340]84
[819]85G4double G4IonsKoxCrossSection::
86GetCrossSection(const G4DynamicParticle* aParticle,
87 const G4Element* anElement, G4double temperature)
88{
89 G4int nIso = anElement->GetNumberOfIsotopes();
90 G4double xsection = 0;
91
92 if (nIso) {
93 G4double sig;
94 G4IsotopeVector* isoVector = anElement->GetIsotopeVector();
95 G4double* abundVector = anElement->GetRelativeAbundanceVector();
[1340]96 G4int ZZ;
97 G4int AA;
[819]98
99 for (G4int i = 0; i < nIso; i++) {
[1340]100 ZZ = (*isoVector)[i]->GetZ();
101 AA = (*isoVector)[i]->GetN();
102 sig = GetZandACrossSection(aParticle, ZZ, AA, temperature);
[819]103 xsection += sig*abundVector[i];
104 }
105
106 } else {
[1340]107 G4int ZZ = G4lrint(anElement->GetZ());
108 G4int AA = G4lrint(anElement->GetN());
109 xsection = GetIsoZACrossSection(aParticle, ZZ, AA, temperature);
[819]110 }
111
112 return xsection;
113}
114
115
[1340]116G4double
117G4IonsKoxCrossSection::calEcm(G4double mp, G4double mt, G4double Plab)
[819]118{
119 G4double Elab = std::sqrt ( mp * mp + Plab * Plab );
120 G4double Ecm = std::sqrt ( mp * mp + mt * mt + 2 * Elab * mt );
121 G4double Pcm = Plab * mt / Ecm;
122 G4double KEcm = std::sqrt ( Pcm * Pcm + mp * mp ) - mp;
123 return KEcm;
124}
125
126
[1340]127G4double G4IonsKoxCrossSection::calCeValue(const G4double ke)
[819]128{
129 // Calculate c value
130 // This value is indepenent from projectile and target particle
131 // ke is projectile kinetic energy per nucleon in the Lab system with MeV unit
132 // fitting function is made by T. Koi
133 // There are no data below 30 MeV/n in Kox et al.,
134
135 G4double Ce;
136 G4double log10_ke = std::log10 ( ke );
[1340]137 if (log10_ke > 1.5)
[819]138 {
139 Ce = - 10.0 / std::pow ( G4double(log10_ke) , G4double(5) ) + 2.0;
140 }
141 else
142 {
[1340]143 Ce = (-10.0/std::pow(G4double(1.5), G4double(5) ) + 2.0) /
144 std::pow(G4double(1.5), G4double(3)) * std::pow(G4double(log10_ke), G4double(3) );
[819]145
146 }
147 return Ce;
148}
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