source: trunk/source/processes/electromagnetic/lowenergy/src/G4eIonisationCrossSectionHandler.cc@ 1285

Last change on this file since 1285 was 1228, checked in by garnier, 16 years ago

update geant4.9.3 tag

File size: 7.3 KB
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[819]1//
2// ********************************************************************
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4// * *
5// * The Geant4 software is copyright of the Copyright Holders of *
6// * the Geant4 Collaboration. It is provided under the terms and *
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14// * regarding this software system or assume any liability for its *
15// * use. Please see the license in the file LICENSE and URL above *
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17// * *
18// * This code implementation is the result of the scientific and *
19// * technical work of the GEANT4 collaboration. *
20// * By using, copying, modifying or distributing the software (or *
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24// ********************************************************************
25//
[1192]26// $Id: G4eIonisationCrossSectionHandler.cc,v 1.15 2009/09/27 10:47:42 sincerti Exp $
[1228]27// GEANT4 tag $Name: geant4-09-03 $
[819]28//
29// -------------------------------------------------------------------
30//
31// GEANT4 Class file
32//
33//
34// File name: G4eIonisationCrossSectionHandler
35//
36// Author: V.Ivanchenko (Vladimir.Ivanchenko@cern.ch)
37//
38// Creation date: 25 Sept 2001
39//
40// Modifications:
41// 10 Oct 2001 M.G. Pia Revision to improve code quality and consistency with design
42// 19 Jul 2002 VI Create composite data set for material
43// 21 Jan 2003 V.Ivanchenko Cut per region
[1055]44// 28 Jan 2009 L.Pandola Added public method to make a easier migration of
45// G4LowEnergyIonisation to G4LivermoreIonisationModel
[1192]46// 15 Jul 2009 Nicolas A. Karakatsanis
[819]47//
[1192]48// - BuildCrossSectionForMaterials method was revised in order to calculate the
49// logarithmic values of the loaded data.
50// It retrieves the data values from the G4EMLOW data files but, then, calculates the
51// respective log values and loads them to seperate data structures.
52// The EM data sets, initialized this way, contain both non-log and log values.
53// These initialized data sets can enhance the computing performance of data interpolation
54// operations
55//
56//
57//
[819]58// -------------------------------------------------------------------
59
60#include "G4eIonisationCrossSectionHandler.hh"
61#include "G4VEnergySpectrum.hh"
62#include "G4DataVector.hh"
63#include "G4CompositeEMDataSet.hh"
64#include "G4VDataSetAlgorithm.hh"
65#include "G4LinLogLogInterpolation.hh"
66#include "G4SemiLogInterpolation.hh"
67#include "G4VEMDataSet.hh"
68#include "G4EMDataSet.hh"
69#include "G4Material.hh"
70#include "G4ProductionCutsTable.hh"
71
72
73G4eIonisationCrossSectionHandler::G4eIonisationCrossSectionHandler(
74 const G4VEnergySpectrum* spec, G4VDataSetAlgorithm* alg,
75 G4double emin, G4double emax, G4int nbin)
76 : G4VCrossSectionHandler(),
77 theParam(spec)
78{
79 G4VCrossSectionHandler::Initialise(alg, emin, emax, nbin);
80 interp = new G4LinLogLogInterpolation();
81}
82
83
84G4eIonisationCrossSectionHandler::~G4eIonisationCrossSectionHandler()
85{
86 delete interp;
87}
88
89
90std::vector<G4VEMDataSet*>* G4eIonisationCrossSectionHandler::BuildCrossSectionsForMaterials(
91 const G4DataVector& energyVector,
92 const G4DataVector* energyCuts)
93{
94 G4int verbose = 0;
95 std::vector<G4VEMDataSet*>* set = new std::vector<G4VEMDataSet*>;
96
97 G4DataVector* energies;
98 G4DataVector* cs;
[1192]99
100 G4DataVector* log_energies;
101 G4DataVector* log_cs;
102
[819]103 G4int nOfBins = energyVector.size();
104
105 const G4ProductionCutsTable* theCoupleTable=
106 G4ProductionCutsTable::GetProductionCutsTable();
107 size_t numOfCouples = theCoupleTable->GetTableSize();
108
109 for (size_t m=0; m<numOfCouples; m++) {
110
111 const G4MaterialCutsCouple* couple = theCoupleTable->GetMaterialCutsCouple(m);
112 const G4Material* material= couple->GetMaterial();
113 const G4ElementVector* elementVector = material->GetElementVector();
114 const G4double* nAtomsPerVolume = material->GetAtomicNumDensityVector();
115 G4int nElements = material->GetNumberOfElements();
116
[1055]117 if(verbose > 0)
118 {
119 G4cout << "eIonisation CS for " << m << "th material "
120 << material->GetName()
121 << " eEl= " << nElements << G4endl;
122 }
[819]123
124 G4double tcut = (*energyCuts)[m];
125
126 G4VDataSetAlgorithm* algo = interp->Clone();
127 G4VEMDataSet* setForMat = new G4CompositeEMDataSet(algo,1.,1.);
128
129 for (G4int i=0; i<nElements; i++) {
130
131 G4int Z = (G4int) (*elementVector)[i]->GetZ();
132 G4int nShells = NumberOfComponents(Z);
[1192]133
[819]134 energies = new G4DataVector;
135 cs = new G4DataVector;
[1192]136
137 log_energies = new G4DataVector;
138 log_cs = new G4DataVector;
139
[819]140 G4double density = nAtomsPerVolume[i];
141
142 for (G4int bin=0; bin<nOfBins; bin++) {
143
144 G4double e = energyVector[bin];
145 energies->push_back(e);
[1192]146 log_energies->push_back(std::log10(e));
[819]147 G4double value = 0.0;
[1192]148 G4double log_value = -300;
[819]149
150 if(e > tcut) {
151 for (G4int n=0; n<nShells; n++) {
152 G4double cross = FindValue(Z, e, n);
153 G4double p = theParam->Probability(Z, tcut, e, e, n);
154 value += cross * p * density;
155
[1055]156 if(verbose>0 && m == 0 && e>=1. && e<=0.)
157 {
[819]158 G4cout << "G4eIonCrossSH: e(MeV)= " << e/MeV
159 << " n= " << n
160 << " cross= " << cross
161 << " p= " << p
162 << " value= " << value
163 << " tcut(MeV)= " << tcut/MeV
164 << " rho= " << density
165 << " Z= " << Z
166 << G4endl;
[1055]167 }
[819]168
169 }
[1192]170 if (value == 0.) value = 1e-300;
171 log_value = std::log10(value);
[819]172 }
173 cs->push_back(value);
[1192]174 log_cs->push_back(log_value);
[819]175 }
176 G4VDataSetAlgorithm* algo = interp->Clone();
[1192]177
178 //G4VEMDataSet* elSet = new G4EMDataSet(i,energies,cs,algo,1.,1.);
179
180 G4VEMDataSet* elSet = new G4EMDataSet(i,energies,cs,log_energies,log_cs,algo,1.,1.);
181
[819]182 setForMat->AddComponent(elSet);
183 }
184 set->push_back(setForMat);
185 }
186
187 return set;
188}
189
[1055]190G4double G4eIonisationCrossSectionHandler::GetCrossSectionAboveThresholdForElement(G4double energy,
191 G4double cutEnergy,
192 G4int Z)
193{
194 G4int nShells = NumberOfComponents(Z);
195 G4double value = 0.;
196 if(energy > cutEnergy)
197 {
198 for (G4int n=0; n<nShells; n++) {
199 G4double cross = FindValue(Z, energy, n);
200 G4double p = theParam->Probability(Z, cutEnergy, energy, energy, n);
201 value += cross * p;
202 }
203 }
204 return value;
205}
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