source: trunk/source/processes/cuts/src/G4RToEConvForGamma.cc @ 1201

Last change on this file since 1201 was 1196, checked in by garnier, 15 years ago

update CVS release candidate geant4.9.3.01

File size: 6.4 KB
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26//
27// $Id: G4RToEConvForGamma.cc,v 1.6 2009/09/12 12:09:42 kurasige Exp $
28// GEANT4 tag $Name: geant4-09-03-cand-01 $
29//
30//
31// --------------------------------------------------------------
32//      GEANT 4 class implementation file/  History:
33//    5 Oct. 2002, H.Kuirashige : Structure created based on object model
34// --------------------------------------------------------------
35
36#include "G4RToEConvForGamma.hh"
37#include "G4ParticleDefinition.hh"
38#include "G4ParticleTable.hh"
39#include "G4Material.hh"
40#include "G4PhysicsLogVector.hh"
41
42#include "G4ios.hh"
43
44G4RToEConvForGamma::G4RToEConvForGamma() : G4VRangeToEnergyConverter()
45{   
46  theParticle =  G4ParticleTable::GetParticleTable()->FindParticle("gamma");
47  if (theParticle ==0) {
48#ifdef G4VERBOSE
49    if (GetVerboseLevel()>0) {
50      G4cout << " G4RToEConvForGamma::G4RToEConvForGamma() ";
51      G4cout << " Gamma is not defined !!" << G4endl;
52    }
53#endif
54  } 
55}
56
57G4RToEConvForGamma::~G4RToEConvForGamma()
58{ 
59}
60
61
62// ***********************************************************************
63// ******************* BuildAbsorptionLengthVector ***********************
64// ***********************************************************************
65void G4RToEConvForGamma::BuildAbsorptionLengthVector(
66                            const G4Material* aMaterial,
67                            G4RangeVector* absorptionLengthVector )
68{
69  // fill the absorption length vector for this material
70  // absorption length is defined here as
71  //
72  //    absorption length = 5./ macroscopic absorption cross section
73  //
74  const G4CrossSectionTable* aCrossSectionTable = (G4CrossSectionTable*)(theLossTable);
75  const G4ElementVector* elementVector = aMaterial->GetElementVector();
76  const G4double* atomicNumDensityVector = aMaterial->GetAtomicNumDensityVector();
77
78  //  fill absorption length vector
79  G4int NumEl = aMaterial->GetNumberOfElements();
80  G4double absorptionLengthMax = 0.0;
81  G4double previous = 0.;
82  for (size_t ibin=0; ibin<size_t(TotBin); ibin++) {
83    G4double SIGMA = 0. ;
84    for (size_t iel=0; iel<size_t(NumEl); iel++) {
85      G4int IndEl = (*elementVector)[iel]->GetIndex();
86      SIGMA +=  atomicNumDensityVector[iel]*
87                   (*((*aCrossSectionTable)[IndEl]))[ibin];
88    }
89    //  absorption length=5./SIGMA
90    absorptionLengthVector->PutValue(ibin, 5./SIGMA);
91    if (absorptionLengthMax < 5./SIGMA ) absorptionLengthMax = 5./SIGMA;
92 
93    //if (previous > 5./SIGMA) {
94    //  G4cout << "G4RToEConvForGamma::BuildAbsorptionLengthVector"
95    //     << ": WARNING absorptionVector "
96    //     << ibin << ":" <<  5./SIGMA  << " <-- "
97    //     << ibin -1 <<  ":" << previous <<G4endl;
98    //}
99
100    previous = 5./SIGMA;
101  }
102}
103
104
105
106// ***********************************************************************
107// ********************** ComputeCrossSection ****************************
108// ***********************************************************************
109G4double G4RToEConvForGamma::ComputeCrossSection(G4double AtomicNumber,
110                                                 G4double KineticEnergy) const
111{
112  //  Compute the "absorption" cross section of the photon "absorption"
113  //  cross section means here the sum of the cross sections of the
114  //  pair production, Compton scattering and photoelectric processes
115  static G4double Z; 
116  const  G4double t1keV = 1.*keV;
117  const  G4double t200keV = 200.*keV;
118  const  G4double t100MeV = 100.*MeV;
119
120  static G4double s200keV, s1keV;
121  static G4double tmin, tlow; 
122  static G4double smin, slow;
123  static G4double cmin, clow, chigh;
124  //  compute Z dependent quantities in the case of a new AtomicNumber
125  if(std::abs(AtomicNumber-Z)>0.1)  {
126    Z = AtomicNumber;
127    G4double Zsquare = Z*Z;
128    G4double Zlog = std::log(Z);
129    G4double Zlogsquare = Zlog*Zlog;
130
131    s200keV = (0.2651-0.1501*Zlog+0.02283*Zlogsquare)*Zsquare;
132    tmin = (0.552+218.5/Z+557.17/Zsquare)*MeV;
133    smin = (0.01239+0.005585*Zlog-0.000923*Zlogsquare)*std::exp(1.5*Zlog);
134    cmin=std::log(s200keV/smin)/(std::log(tmin/t200keV)*std::log(tmin/t200keV));
135    tlow = 0.2*std::exp(-7.355/std::sqrt(Z))*MeV;
136    slow = s200keV*std::exp(0.042*Z*std::log(t200keV/tlow)*std::log(t200keV/tlow));
137    s1keV = 300.*Zsquare;
138    clow =std::log(s1keV/slow)/std::log(tlow/t1keV);
139
140    chigh=(7.55e-5-0.0542e-5*Z)*Zsquare*Z/std::log(t100MeV/tmin);
141  }
142
143  //  calculate the cross section (using an approximate empirical formula)
144  G4double s;
145  if ( KineticEnergy<tlow ) {
146    if(KineticEnergy<t1keV) s = slow*std::exp(clow*std::log(tlow/t1keV));
147    else                    s = slow*std::exp(clow*std::log(tlow/KineticEnergy));
148
149  } else if ( KineticEnergy<t200keV ) {
150    s = s200keV
151         * std::exp(0.042*Z*std::log(t200keV/KineticEnergy)*std::log(t200keV/KineticEnergy));
152
153  } else if( KineticEnergy<tmin ){
154    s = smin
155         * std::exp(cmin*std::log(tmin/KineticEnergy)*std::log(tmin/KineticEnergy));
156
157  } else {
158    s = smin + chigh*std::log(KineticEnergy/tmin);
159
160  }
161  return s * barn;
162}
163
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