source: trunk/source/processes/electromagnetic/lowenergy/src/G4eIonisationCrossSectionHandler.cc@ 968

Last change on this file since 968 was 961, checked in by garnier, 17 years ago

update processes

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[819]1//
2// ********************************************************************
3// * License and Disclaimer *
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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9// * include a list of copyright holders. *
10// * *
11// * Neither the authors of this software system, nor their employing *
12// * institutes,nor the agencies providing financial support for this *
13// * work make any representation or warranty, express or implied, *
14// * regarding this software system or assume any liability for its *
15// * use. Please see the license in the file LICENSE and URL above *
16// * for the full disclaimer and the limitation of liability. *
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 *
21// * any work based on the software) you agree to acknowledge its *
22// * use in resulting scientific publications, and indicate your *
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24// ********************************************************************
25//
[961]26// $Id: G4eIonisationCrossSectionHandler.cc,v 1.12 2009/01/29 08:13:34 pandola Exp $
27// GEANT4 tag $Name: geant4-09-02-ref-02 $
[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
[961]44// 28 Jan 2009 L.Pandola Added public method to make a easier migration of
45// G4LowEnergyIonisation to G4LivermoreIonisationModel
[819]46//
47// -------------------------------------------------------------------
48
49#include "G4eIonisationCrossSectionHandler.hh"
50#include "G4VEnergySpectrum.hh"
51#include "G4DataVector.hh"
52#include "G4CompositeEMDataSet.hh"
53#include "G4VDataSetAlgorithm.hh"
54#include "G4LinLogLogInterpolation.hh"
55#include "G4SemiLogInterpolation.hh"
56#include "G4VEMDataSet.hh"
57#include "G4EMDataSet.hh"
58#include "G4Material.hh"
59#include "G4ProductionCutsTable.hh"
60
61
62G4eIonisationCrossSectionHandler::G4eIonisationCrossSectionHandler(
63 const G4VEnergySpectrum* spec, G4VDataSetAlgorithm* alg,
64 G4double emin, G4double emax, G4int nbin)
65 : G4VCrossSectionHandler(),
66 theParam(spec)
67{
68 G4VCrossSectionHandler::Initialise(alg, emin, emax, nbin);
69 interp = new G4LinLogLogInterpolation();
70}
71
72
73G4eIonisationCrossSectionHandler::~G4eIonisationCrossSectionHandler()
74{
75 delete interp;
76}
77
78
79std::vector<G4VEMDataSet*>* G4eIonisationCrossSectionHandler::BuildCrossSectionsForMaterials(
80 const G4DataVector& energyVector,
81 const G4DataVector* energyCuts)
82{
83 G4int verbose = 0;
84 std::vector<G4VEMDataSet*>* set = new std::vector<G4VEMDataSet*>;
85
86 G4DataVector* energies;
87 G4DataVector* cs;
88 G4int nOfBins = energyVector.size();
89
90 const G4ProductionCutsTable* theCoupleTable=
91 G4ProductionCutsTable::GetProductionCutsTable();
92 size_t numOfCouples = theCoupleTable->GetTableSize();
93
94 for (size_t m=0; m<numOfCouples; m++) {
95
96 const G4MaterialCutsCouple* couple = theCoupleTable->GetMaterialCutsCouple(m);
97 const G4Material* material= couple->GetMaterial();
98 const G4ElementVector* elementVector = material->GetElementVector();
99 const G4double* nAtomsPerVolume = material->GetAtomicNumDensityVector();
100 G4int nElements = material->GetNumberOfElements();
101
[961]102 if(verbose > 0)
103 {
104 G4cout << "eIonisation CS for " << m << "th material "
105 << material->GetName()
106 << " eEl= " << nElements << G4endl;
107 }
[819]108
109 G4double tcut = (*energyCuts)[m];
110
111 G4VDataSetAlgorithm* algo = interp->Clone();
112 G4VEMDataSet* setForMat = new G4CompositeEMDataSet(algo,1.,1.);
113
114 for (G4int i=0; i<nElements; i++) {
115
116 G4int Z = (G4int) (*elementVector)[i]->GetZ();
117 G4int nShells = NumberOfComponents(Z);
118 energies = new G4DataVector;
119 cs = new G4DataVector;
120 G4double density = nAtomsPerVolume[i];
121
122 for (G4int bin=0; bin<nOfBins; bin++) {
123
124 G4double e = energyVector[bin];
125 energies->push_back(e);
126 G4double value = 0.0;
127
128 if(e > tcut) {
129 for (G4int n=0; n<nShells; n++) {
130 G4double cross = FindValue(Z, e, n);
131 G4double p = theParam->Probability(Z, tcut, e, e, n);
132 value += cross * p * density;
133
[961]134 if(verbose>0 && m == 0 && e>=1. && e<=0.)
135 {
[819]136 G4cout << "G4eIonCrossSH: e(MeV)= " << e/MeV
137 << " n= " << n
138 << " cross= " << cross
139 << " p= " << p
140 << " value= " << value
141 << " tcut(MeV)= " << tcut/MeV
142 << " rho= " << density
143 << " Z= " << Z
144 << G4endl;
[961]145 }
[819]146
147 }
148 }
149 cs->push_back(value);
150 }
151 G4VDataSetAlgorithm* algo = interp->Clone();
152 G4VEMDataSet* elSet = new G4EMDataSet(i,energies,cs,algo,1.,1.);
153 setForMat->AddComponent(elSet);
154 }
155 set->push_back(setForMat);
156 }
157
158 return set;
159}
160
[961]161G4double G4eIonisationCrossSectionHandler::GetCrossSectionAboveThresholdForElement(G4double energy,
162 G4double cutEnergy,
163 G4int Z)
164{
165 G4int nShells = NumberOfComponents(Z);
166 G4double value = 0.;
167 if(energy > cutEnergy)
168 {
169 for (G4int n=0; n<nShells; n++) {
170 G4double cross = FindValue(Z, energy, n);
171 G4double p = theParam->Probability(Z, cutEnergy, energy, energy, n);
172 value += cross * p;
173 }
174 }
175 return value;
176}
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