Geant4  10.02
G4EmDNAPhysics_option2.cc
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26 // $Id: G4EmDNAPhysics_option2.cc 82360 2014-06-17 15:16:30Z gcosmo $
27 
28 // SI: This constructor uses speedup options of DNA models
29 
31 
32 #include "G4SystemOfUnits.hh"
33 
35 
36 // *** Processes and models for Geant4-DNA
37 
38 #include "G4DNAElastic.hh"
41 
42 #include "G4DNAExcitation.hh"
43 #include "G4DNAAttachment.hh"
44 #include "G4DNAVibExcitation.hh"
45 #include "G4DNAIonisation.hh"
46 #include "G4DNAChargeDecrease.hh"
47 #include "G4DNAChargeIncrease.hh"
48 
49 // particles
50 
51 #include "G4Electron.hh"
52 #include "G4Proton.hh"
53 #include "G4GenericIon.hh"
54 
55 // Warning : the following is needed in order to use EM Physics builders
56 // e+
57 #include "G4Positron.hh"
58 #include "G4eMultipleScattering.hh"
59 #include "G4eIonisation.hh"
60 #include "G4eBremsstrahlung.hh"
61 #include "G4eplusAnnihilation.hh"
62 // gamma
63 #include "G4Gamma.hh"
64 #include "G4PhotoElectricEffect.hh"
66 #include "G4ComptonScattering.hh"
68 #include "G4GammaConversion.hh"
70 #include "G4RayleighScattering.hh"
72 
73 #include "G4EmParameters.hh"
74 // end of warning
75 
76 #include "G4LossTableManager.hh"
77 #include "G4UAtomicDeexcitation.hh"
78 #include "G4PhysicsListHelper.hh"
79 #include "G4BuilderType.hh"
80 
81 // factory
83 //
85 
86 
87 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
88 
90  : G4VPhysicsConstructor("G4EmDNAPhysics_option2"), verbose(ver)
91 {
94 }
95 
96 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
97 
99  : G4VPhysicsConstructor("G4EmDNAPhysics_option2"), verbose(ver)
100 {
103 }
104 
105 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
106 
108 {}
109 
110 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
111 
113 {
114 // bosons
115  G4Gamma::Gamma();
116 
117 // leptons
120 
121 // baryons
123 
125 
126  G4DNAGenericIonsManager * genericIonsManager;
127  genericIonsManager=G4DNAGenericIonsManager::Instance();
128  genericIonsManager->GetIon("alpha++");
129  genericIonsManager->GetIon("alpha+");
130  genericIonsManager->GetIon("helium");
131  genericIonsManager->GetIon("hydrogen");
132 
133 }
134 
135 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
136 
138 {
139  if(verbose > 1) {
140  G4cout << "### " << GetPhysicsName() << " Construct Processes " << G4endl;
141  }
143 
144  aParticleIterator->reset();
145  while( (*aParticleIterator)() )
146  {
147  G4ParticleDefinition* particle = aParticleIterator->value();
148  G4String particleName = particle->GetParticleName();
149 
150  if (particleName == "e-") {
151 
152  // *** Elastic scattering (two alternative models available) ***
153 
154  G4DNAElastic* theDNAElasticProcess = new G4DNAElastic("e-_G4DNAElastic");
155  theDNAElasticProcess->SetEmModel(new G4DNAChampionElasticModel());
156 
157  // or alternative model
158  //theDNAElasticProcess->SetEmModel(new G4DNAScreenedRutherfordElasticModel());
159 
160  ph->RegisterProcess(theDNAElasticProcess, particle);
161 
162  // *** Excitation ***
163  ph->RegisterProcess(new G4DNAExcitation("e-_G4DNAExcitation"), particle);
164 
165  // *** Ionisation ***
166  //ph->RegisterProcess(new G4DNAIonisation("e-_G4DNAIonisation"), particle);
167  G4DNAIonisation* theDNAIonisationProcess = new G4DNAIonisation("e-_G4DNAIonisation");
168  theDNAIonisationProcess->SetEmModel(new G4DNABornIonisationModel());
169  ((G4DNABornIonisationModel*)(theDNAIonisationProcess->EmModel()))->SelectFasterComputation(true);
170  ph->RegisterProcess(theDNAIonisationProcess, particle);
171 
172  // *** Vibrational excitation ***
173  ph->RegisterProcess(new G4DNAVibExcitation("e-_G4DNAVibExcitation"), particle);
174 
175  // *** Attachment ***
176  ph->RegisterProcess(new G4DNAAttachment("e-_G4DNAAttachment"), particle);
177 
178  } else if ( particleName == "proton" ) {
179 
180  ph->RegisterProcess(new G4DNAExcitation("proton_G4DNAExcitation"), particle);
181 
182  G4DNAIonisation* theDNAIonisationProcess = new G4DNAIonisation("proton_G4DNAIonisation");
183 
184  G4VEmModel* mod1;
186  mod1->SetLowEnergyLimit(0*eV);
187  mod1->SetHighEnergyLimit(500*keV);
188 
189  G4VEmModel* mod2;
190  mod2= new G4DNABornIonisationModel();
191  mod2->SetLowEnergyLimit(500*keV);
192  mod2->SetHighEnergyLimit(100*MeV);
193 
194  theDNAIonisationProcess->SetEmModel(mod1,1);
195  theDNAIonisationProcess->SetEmModel(mod2,2);
196  ((G4DNABornIonisationModel*)(theDNAIonisationProcess->EmModel(2)))->SelectFasterComputation(true);
197 
198  ph->RegisterProcess(theDNAIonisationProcess, particle);
199 
200  ph->RegisterProcess(new G4DNAChargeDecrease("proton_G4DNAChargeDecrease"), particle);
201 
202  } else if ( particleName == "hydrogen" ) {
203 
204  ph->RegisterProcess(new G4DNAExcitation("hydrogen_G4DNAExcitation"), particle);
205 
206  //ph->RegisterProcess(new G4DNAIonisation("hydrogen_G4DNAIonisation"), particle);
207  G4DNAIonisation* theDNAIonisationProcess = new G4DNAIonisation("hydrogen_G4DNAIonisation");
208  theDNAIonisationProcess->SetEmModel(new G4DNARuddIonisationExtendedModel());
209  ph->RegisterProcess(theDNAIonisationProcess, particle);
210 
211  ph->RegisterProcess(new G4DNAChargeIncrease("hydrogen_G4DNAChargeIncrease"), particle);
212 
213  } else if ( particleName == "alpha" ) {
214 
215  ph->RegisterProcess(new G4DNAExcitation("alpha_G4DNAExcitation"), particle);
216 
217  //ph->RegisterProcess(new G4DNAIonisation("alpha_G4DNAIonisation"), particle);
218  G4DNAIonisation* theDNAIonisationProcess = new G4DNAIonisation("alpha_G4DNAIonisation");
219  theDNAIonisationProcess->SetEmModel(new G4DNARuddIonisationExtendedModel());
220  ph->RegisterProcess(theDNAIonisationProcess, particle);
221 
222  ph->RegisterProcess(new G4DNAChargeDecrease("alpha_G4DNAChargeDecrease"), particle);
223 
224  } else if ( particleName == "alpha+" ) {
225 
226  ph->RegisterProcess(new G4DNAExcitation("alpha+_G4DNAExcitation"), particle);
227 
228  //ph->RegisterProcess(new G4DNAIonisation("alpha+_G4DNAIonisation"), particle);
229  G4DNAIonisation* theDNAIonisationProcess = new G4DNAIonisation("alpha+_G4DNAIonisation");
230  theDNAIonisationProcess->SetEmModel(new G4DNARuddIonisationExtendedModel());
231  ph->RegisterProcess(theDNAIonisationProcess, particle);
232 
233  ph->RegisterProcess(new G4DNAChargeDecrease("alpha+_G4DNAChargeDecrease"), particle);
234  ph->RegisterProcess(new G4DNAChargeIncrease("alpha+_G4DNAChargeIncrease"), particle);
235 
236  } else if ( particleName == "helium" ) {
237 
238  ph->RegisterProcess(new G4DNAExcitation("helium_G4DNAExcitation"), particle);
239 
240  //ph->RegisterProcess(new G4DNAIonisation("helium_G4DNAIonisation"), particle);
241  G4DNAIonisation* theDNAIonisationProcess = new G4DNAIonisation("helium_G4DNAIonisation");
242  theDNAIonisationProcess->SetEmModel(new G4DNARuddIonisationExtendedModel());
243  ph->RegisterProcess(theDNAIonisationProcess, particle);
244 
245  ph->RegisterProcess(new G4DNAChargeIncrease("helium_G4DNAChargeIncrease"), particle);
246 
247  } else if ( particleName == "GenericIon" ) {
248  ph->RegisterProcess(new G4DNAIonisation("GenericIon_G4DNAIonisation"), particle);
249 
250  }
251 
252  // Warning : the following particles and processes are needed by EM Physics builders
253  // They are taken from the default Livermore Physics list
254  // These particles are currently not handled by Geant4-DNA
255 
256  // e+
257 
258  else if (particleName == "e+") {
259 
260  // Identical to G4EmStandardPhysics_option3
261 
264  G4eIonisation* eIoni = new G4eIonisation();
265  eIoni->SetStepFunction(0.2, 100*um);
266 
267  ph->RegisterProcess(msc, particle);
268  ph->RegisterProcess(eIoni, particle);
269  ph->RegisterProcess(new G4eBremsstrahlung(), particle);
270  ph->RegisterProcess(new G4eplusAnnihilation(), particle);
271 
272  } else if (particleName == "gamma") {
273 
274  G4double LivermoreHighEnergyLimit = GeV;
275 
276  G4PhotoElectricEffect* thePhotoElectricEffect = new G4PhotoElectricEffect();
277  G4LivermorePhotoElectricModel* theLivermorePhotoElectricModel =
279  theLivermorePhotoElectricModel->SetHighEnergyLimit(LivermoreHighEnergyLimit);
280  thePhotoElectricEffect->AddEmModel(0, theLivermorePhotoElectricModel);
281  ph->RegisterProcess(thePhotoElectricEffect, particle);
282 
283  G4ComptonScattering* theComptonScattering = new G4ComptonScattering();
284  G4LivermoreComptonModel* theLivermoreComptonModel =
286  theLivermoreComptonModel->SetHighEnergyLimit(LivermoreHighEnergyLimit);
287  theComptonScattering->AddEmModel(0, theLivermoreComptonModel);
288  ph->RegisterProcess(theComptonScattering, particle);
289 
290  G4GammaConversion* theGammaConversion = new G4GammaConversion();
291  G4LivermoreGammaConversionModel* theLivermoreGammaConversionModel =
293  theLivermoreGammaConversionModel->SetHighEnergyLimit(LivermoreHighEnergyLimit);
294  theGammaConversion->AddEmModel(0, theLivermoreGammaConversionModel);
295  ph->RegisterProcess(theGammaConversion, particle);
296 
297  G4RayleighScattering* theRayleigh = new G4RayleighScattering();
298  G4LivermoreRayleighModel* theRayleighModel = new G4LivermoreRayleighModel();
299  theRayleighModel->SetHighEnergyLimit(LivermoreHighEnergyLimit);
300  theRayleigh->AddEmModel(0, theRayleighModel);
301  ph->RegisterProcess(theRayleigh, particle);
302  }
303 
304  // Warning : end of particles and processes are needed by EM Physics builders
305 
306  }
307 
308  // Deexcitation
309  //
312  de->SetFluo(true);
313 }
314 
315 //....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
static G4GenericIon * GenericIonDefinition()
Definition: G4GenericIon.cc:88
static const double MeV
Definition: G4SIunits.hh:211
#define G4DNABornIonisationModel
static G4LossTableManager * Instance()
G4_DECLARE_PHYSCONSTR_FACTORY(G4EmDNAPhysics_option2)
G4VEmModel * EmModel(G4int index=1) const
void SetStepFunction(G4double v1, G4double v2)
int G4int
Definition: G4Types.hh:78
const G4String & GetParticleName() const
void SetHighEnergyLimit(G4double)
Definition: G4VEmModel.hh:725
void SetEmModel(G4VEmModel *, G4int index=1)
G4GLOB_DLL std::ostream G4cout
#define aParticleIterator
G4bool RegisterProcess(G4VProcess *process, G4ParticleDefinition *particle)
static G4Proton * Proton()
Definition: G4Proton.cc:93
static const double GeV
Definition: G4SIunits.hh:214
const G4String & GetPhysicsName() const
static G4DNAGenericIonsManager * Instance(void)
static G4Gamma * Gamma()
Definition: G4Gamma.cc:86
static const double eV
Definition: G4SIunits.hh:212
static G4Positron * Positron()
Definition: G4Positron.cc:94
void AddEmModel(G4int, G4VEmModel *, const G4Region *region=0)
static G4PhysicsListHelper * GetPhysicsListHelper()
static G4EmParameters * Instance()
static const double um
Definition: G4SIunits.hh:112
static G4Electron * Electron()
Definition: G4Electron.cc:94
#define G4endl
Definition: G4ios.hh:61
static const double keV
Definition: G4SIunits.hh:213
double G4double
Definition: G4Types.hh:76
void SetLowEnergyLimit(G4double)
Definition: G4VEmModel.hh:732
void SetAtomDeexcitation(G4VAtomDeexcitation *)
void SetStepLimitType(G4MscStepLimitType val)
G4ParticleDefinition * GetIon(const G4String &name)