source: trunk/source/processes/electromagnetic/lowenergy/src/G4CrossSectionChargeIncrease.cc@ 830

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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 *
7// * conditions of the Geant4 Software License, included in the file *
8// * LICENSE and available at http://cern.ch/geant4/license . These *
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 *
23// * acceptance of all terms of the Geant4 Software license. *
24// ********************************************************************
25//
26//
27// $Id: G4CrossSectionChargeIncrease.cc,v 1.3 2007/12/10 16:31:21 gunter Exp $
28// GEANT4 tag $Name: $
29//
30// Contact Author: Maria Grazia Pia (Maria.Grazia.Pia@cern.ch)
31//
32// Reference: TNS Geant4-DNA paper
33// Reference for implementation model: NIM. 155, pp. 145-156, 1978
34
35// History:
36// -----------
37// Date Name Modification
38// 28 Apr 2007 M.G. Pia Created in compliance with design described in TNS paper
39//
40// -------------------------------------------------------------------
41
42// Class description:
43// Geant4-DNA Cross total cross section for electron elastic scattering in water
44// Reference: TNS Geant4-DNA paper
45// S. Chauvie et al., Geant4 physics processes for microdosimetry simulation:
46// design foundation and implementation of the first set of models,
47// IEEE Trans. Nucl. Sci., vol. 54, no. 6, Dec. 2007.
48// Further documentation available from http://www.ge.infn.it/geant4/dna
49
50// -------------------------------------------------------------------
51
52
53#include "G4CrossSectionChargeIncrease.hh"
54#include "G4Track.hh"
55#include "G4DynamicParticle.hh"
56#include "G4ParticleDefinition.hh"
57#include "G4DNAGenericIonsManager.hh"
58
59G4CrossSectionChargeIncrease::G4CrossSectionChargeIncrease()
60{
61 // Default energy limits (defined for protection against anomalous behaviour only)
62 name = "ChargeIncrease";
63 lowEnergyLimitDefault = 1 * keV;
64 highEnergyLimitDefault = 10 * MeV;
65
66 G4DNAGenericIonsManager *instance;
67 instance = G4DNAGenericIonsManager::Instance();
68 G4ParticleDefinition* hydrogenDef = instance->GetIon("hydrogen");
69 G4ParticleDefinition* alphaPlusDef = instance->GetIon("alpha+");
70 G4ParticleDefinition* heliumDef = instance->GetIon("helium");
71
72 G4String hydrogen;
73 G4String alphaPlus;
74 G4String helium;
75
76 if (hydrogenDef != 0)
77 {
78 hydrogen = hydrogenDef->GetParticleName();
79 lowEnergyLimit[hydrogen] = 1. * keV;
80 highEnergyLimit[hydrogen] = 10. * MeV;
81 }
82 else
83 {
84 G4Exception("G4CrossSectionChargeIncrease Constructor: hydrogen is not defined");
85 }
86
87 if (alphaPlusDef != 0)
88 {
89 alphaPlus = alphaPlusDef->GetParticleName();
90 lowEnergyLimit[alphaPlus] = 1. * keV;
91 highEnergyLimit[alphaPlus] = 10. * MeV;
92 }
93 else
94 {
95 G4Exception("G4CrossSectionChargeIncrease Constructor: alphaPlus is not defined");
96 }
97
98 if (heliumDef != 0)
99 {
100 helium = heliumDef->GetParticleName();
101 lowEnergyLimit[helium] = 1. * keV;
102 highEnergyLimit[helium] = 10. * MeV;
103 }
104 else
105 {
106 G4Exception("G4CrossSectionChargeIncrease Constructor: helium is not defined");
107 }
108
109}
110
111
112G4CrossSectionChargeIncrease::~G4CrossSectionChargeIncrease()
113{}
114
115
116G4double G4CrossSectionChargeIncrease::CrossSection(const G4Track& track)
117{
118 G4double lowLim = lowEnergyLimitDefault;
119 G4double highLim = highEnergyLimitDefault;
120
121 const G4DynamicParticle* particle = track.GetDynamicParticle();
122 G4double k = particle->GetKineticEnergy();
123
124 const G4String& particleName = particle->GetDefinition()->GetParticleName();
125
126 G4DNAGenericIonsManager *instance;
127 instance = G4DNAGenericIonsManager::Instance();
128
129 const G4ParticleDefinition* particleDefinition = track.GetDefinition();
130
131 if (
132 particleDefinition != instance->GetIon("hydrogen")
133 &&
134 particleDefinition != instance->GetIon("alpha+")
135 &&
136 particleDefinition != instance->GetIon("helium")
137 )
138
139 G4Exception("G4CrossSectionChargeIncrease: attempting to calculate cross section for wrong particle");
140
141
142 // Retrieve energy limits for the current particle type
143
144 std::map< G4String,G4double,std::less<G4String> >::iterator pos1;
145 pos1 = lowEnergyLimit.find(particleName);
146
147 // Lower limit
148 if (pos1 != lowEnergyLimit.end())
149 {
150 lowLim = pos1->second;
151 }
152
153 // Upper limit
154 std::map< G4String,G4double,std::less<G4String> >::iterator pos2;
155 pos2 = highEnergyLimit.find(particleName);
156
157 if (pos2 != highEnergyLimit.end())
158 {
159 highLim = pos2->second;
160 }
161
162 G4double totalCrossSection = 0.;
163
164 if (k >= lowLim && k <= highLim)
165 {
166 //HYDROGEN
167 if (particleDefinition == instance->GetIon("hydrogen"))
168 {
169 const G4double aa = 2.835;
170 const G4double bb = 0.310;
171 const G4double cc = 2.100;
172 const G4double dd = 0.760;
173 const G4double fac = 1.0e-18;
174 const G4double rr = 13.606 * eV;
175
176 G4double t = k / (proton_mass_c2/electron_mass_c2);
177 G4double x = t / rr;
178 G4double temp = 4.0 * pi * Bohr_radius/nm * Bohr_radius/nm * fac;
179 G4double sigmal = temp * cc * (std::pow(x,dd));
180 G4double sigmah = temp * (aa * std::log(1.0 + x) + bb) / x;
181 totalCrossSection = 1.0/(1.0/sigmal + 1.0/sigmah) *m*m;
182 }
183 else
184 {
185 totalCrossSection = partialCrossSection.Sum(k,particleDefinition);
186 }
187 }
188
189 return totalCrossSection;
190}
191
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