Geant4  10.02.p03
G4EmStandardPhysicsGS Class Reference

#include <G4EmStandardPhysicsGS.hh>

Inheritance diagram for G4EmStandardPhysicsGS:
Collaboration diagram for G4EmStandardPhysicsGS:

Public Member Functions

 G4EmStandardPhysicsGS (G4int ver=0)
 
 G4EmStandardPhysicsGS (G4int ver, const G4String &name)
 
virtual ~G4EmStandardPhysicsGS ()
 
virtual void ConstructParticle ()
 
virtual void ConstructProcess ()
 
- Public Member Functions inherited from G4VPhysicsConstructor
 G4VPhysicsConstructor (const G4String &="")
 
 G4VPhysicsConstructor (const G4String &name, G4int physics_type)
 
virtual ~G4VPhysicsConstructor ()
 
void SetPhysicsName (const G4String &="")
 
const G4StringGetPhysicsName () const
 
void SetPhysicsType (G4int)
 
G4int GetPhysicsType () const
 
void SetVerboseLevel (G4int value)
 
G4int GetVerboseLevel () const
 
G4int GetInstanceID () const
 

Private Attributes

G4int verbose
 

Additional Inherited Members

- Static Public Member Functions inherited from G4VPhysicsConstructor
static const G4VPCManagerGetSubInstanceManager ()
 
- Protected Member Functions inherited from G4VPhysicsConstructor
G4bool RegisterProcess (G4VProcess *process, G4ParticleDefinition *particle)
 
G4ParticleTable::G4PTblDicIteratorGetParticleIterator () const
 
- Protected Attributes inherited from G4VPhysicsConstructor
G4int verboseLevel
 
G4String namePhysics
 
G4int typePhysics
 
G4ParticleTabletheParticleTable
 
G4int g4vpcInstanceID
 
- Static Protected Attributes inherited from G4VPhysicsConstructor
static G4RUN_DLL G4VPCManager subInstanceManager
 

Detailed Description

Definition at line 52 of file G4EmStandardPhysicsGS.hh.

Constructor & Destructor Documentation

◆ G4EmStandardPhysicsGS() [1/2]

G4EmStandardPhysicsGS::G4EmStandardPhysicsGS ( G4int  ver = 0)

Definition at line 109 of file G4EmStandardPhysicsGS.cc.

110  : G4VPhysicsConstructor("G4EmStandard"), verbose(ver)
111 {
113  param->SetDefaults();
114  param->SetVerbose(verbose);
115  param->SetLowestElectronEnergy(10*eV);
116  param->SetMscRangeFactor(0.12);
117  param->SetMscStepLimitType(fUseSafetyPlus);// corresponds to Urban fUseSafety
118 // param->SetFluo(true);
120 }
void SetVerbose(G4int val)
void SetLowestElectronEnergy(G4double val)
void SetMscStepLimitType(G4MscStepLimitType val)
void SetMscRangeFactor(G4double val)
static const double eV
Definition: G4SIunits.hh:212
static G4EmParameters * Instance()
G4VPhysicsConstructor(const G4String &="")
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◆ G4EmStandardPhysicsGS() [2/2]

G4EmStandardPhysicsGS::G4EmStandardPhysicsGS ( G4int  ver,
const G4String name 
)

Definition at line 124 of file G4EmStandardPhysicsGS.cc.

125  : G4VPhysicsConstructor("G4EmStandard"), verbose(ver)
126 {
128  param->SetDefaults();
129  param->SetVerbose(verbose);
130  param->SetLowestElectronEnergy(10*eV);
131  param->SetMscRangeFactor(0.12);
132  param->SetMscStepLimitType(fUseSafetyPlus);// corresponds to Urban fUseSafety
133 // param->SetFluo(true);
135 }
void SetVerbose(G4int val)
void SetLowestElectronEnergy(G4double val)
void SetMscStepLimitType(G4MscStepLimitType val)
void SetMscRangeFactor(G4double val)
static const double eV
Definition: G4SIunits.hh:212
static G4EmParameters * Instance()
G4VPhysicsConstructor(const G4String &="")
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◆ ~G4EmStandardPhysicsGS()

G4EmStandardPhysicsGS::~G4EmStandardPhysicsGS ( )
virtual

Definition at line 139 of file G4EmStandardPhysicsGS.cc.

140 {}

Member Function Documentation

◆ ConstructParticle()

void G4EmStandardPhysicsGS::ConstructParticle ( void  )
virtual

Implements G4VPhysicsConstructor.

Definition at line 144 of file G4EmStandardPhysicsGS.cc.

145 {
146  // gamma
147  G4Gamma::Gamma();
148 
149  // leptons
154 
155  // mesons
160 
161  // barions
164 
165  // ions
168  G4He3::He3();
169  G4Alpha::Alpha();
171 
172  // dna
173  G4EmModelActivator mact;
174  mact.ConstructParticle();
175 }
static G4KaonPlus * KaonPlusDefinition()
Definition: G4KaonPlus.cc:108
static G4GenericIon * GenericIonDefinition()
Definition: G4GenericIon.cc:88
static G4MuonPlus * MuonPlus()
Definition: G4MuonPlus.cc:99
static G4KaonMinus * KaonMinusDefinition()
Definition: G4KaonMinus.cc:108
static G4AntiProton * AntiProton()
Definition: G4AntiProton.cc:93
static G4PionMinus * PionMinusDefinition()
Definition: G4PionMinus.cc:93
static G4Triton * Triton()
Definition: G4Triton.cc:95
static G4PionPlus * PionPlusDefinition()
Definition: G4PionPlus.cc:93
static G4Proton * Proton()
Definition: G4Proton.cc:93
static G4Gamma * Gamma()
Definition: G4Gamma.cc:86
static G4Deuteron * Deuteron()
Definition: G4Deuteron.cc:94
static G4Positron * Positron()
Definition: G4Positron.cc:94
static G4MuonMinus * MuonMinus()
Definition: G4MuonMinus.cc:100
static G4Electron * Electron()
Definition: G4Electron.cc:94
static G4Alpha * Alpha()
Definition: G4Alpha.cc:89
static G4He3 * He3()
Definition: G4He3.cc:94
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◆ ConstructProcess()

void G4EmStandardPhysicsGS::ConstructProcess ( void  )
virtual

Implements G4VPhysicsConstructor.

Definition at line 179 of file G4EmStandardPhysicsGS.cc.

180 {
181  if(verbose > 1) {
182  G4cout << "### " << GetPhysicsName() << " Construct Processes " << G4endl;
183  }
185 
186  // muon & hadron bremsstrahlung and pair production
195 
196  // muon & hadron multiple scattering
198  mumsc->AddEmModel(0, new G4WentzelVIModel());
200 
202  pimsc->AddEmModel(0, new G4WentzelVIModel());
204 
206  kmsc->AddEmModel(0, new G4WentzelVIModel());
208 
210  pmsc->AddEmModel(0, new G4WentzelVIModel());
212 
213  G4hMultipleScattering* hmsc = new G4hMultipleScattering("ionmsc");
214 
215  // high energy limit for e+- scattering models
216  G4double highEnergyLimit = 100*MeV;
217 
218  // Add standard EM Processes
219  auto myParticleIterator=GetParticleIterator();
220  myParticleIterator->reset();
221  while( (*myParticleIterator)() ){
222  G4ParticleDefinition* particle = myParticleIterator->value();
223  G4String particleName = particle->GetParticleName();
224 
225  if (particleName == "gamma") {
226 
227  ph->RegisterProcess(new G4PhotoElectricEffect(), particle);
228  ph->RegisterProcess(new G4ComptonScattering(), particle);
229  ph->RegisterProcess(new G4GammaConversion(), particle);
230 
231 
232 /*
233  G4ComptonScattering* cs = new G4ComptonScattering;
234  cs->SetEmModel(new G4KleinNishinaModel(), 1);
235 
236  G4PhotoElectricEffect* pee = new G4PhotoElectricEffect();
237  pee->SetEmModel(new G4LivermorePhotoElectricModel(), 1);
238 
239  ph->RegisterProcess(cs, particle);
240  ph->RegisterProcess(pee, particle);
241  ph->RegisterProcess(new G4GammaConversion(), particle);
242  ph->RegisterProcess(new G4RayleighScattering(), particle);
243 */
244  } else if (particleName == "e-") {
245 
248  msc1->SetOptionPWAScreening(false);
249 
250  G4WentzelVIModel* msc2 = new G4WentzelVIModel();
251  msc1->SetHighEnergyLimit(highEnergyLimit);
252  msc2->SetLowEnergyLimit(highEnergyLimit);
253  msc->AddEmModel(0, msc1);
254  msc->AddEmModel(0, msc2);
255 
258  ss->SetEmModel(ssm, 1);
259  ss->SetMinKinEnergy(highEnergyLimit);
260  ssm->SetLowEnergyLimit(highEnergyLimit);
261  ssm->SetActivationLowEnergyLimit(highEnergyLimit);
262 
263  ph->RegisterProcess(msc, particle);
264  ph->RegisterProcess(new G4eIonisation(), particle);
265  ph->RegisterProcess(new G4eBremsstrahlung(), particle);
266  ph->RegisterProcess(ss, particle);
267 
268  } else if (particleName == "e+") {
269 
272  msc1->SetOptionPWAScreening(true);
273 
274  G4WentzelVIModel* msc2 = new G4WentzelVIModel();
275  msc1->SetHighEnergyLimit(highEnergyLimit);
276  msc2->SetLowEnergyLimit(highEnergyLimit);
277  msc->AddEmModel(0, msc1);
278  msc->AddEmModel(0, msc2);
279 
282  ss->SetEmModel(ssm, 1);
283  ss->SetMinKinEnergy(highEnergyLimit);
284  ssm->SetLowEnergyLimit(highEnergyLimit);
285  ssm->SetActivationLowEnergyLimit(highEnergyLimit);
286 
287  ph->RegisterProcess(msc, particle);
288  ph->RegisterProcess(new G4eIonisation(), particle);
289  ph->RegisterProcess(new G4eBremsstrahlung(), particle);
290  ph->RegisterProcess(new G4eplusAnnihilation(), particle);
291  ph->RegisterProcess(ss, particle);
292 
293  } else if (particleName == "mu+" ||
294  particleName == "mu-" ) {
295 
296  ph->RegisterProcess(mumsc, particle);
297  ph->RegisterProcess(new G4MuIonisation(), particle);
298  ph->RegisterProcess(mub, particle);
299  ph->RegisterProcess(mup, particle);
300  ph->RegisterProcess(muss, particle);
301 
302  } else if (particleName == "alpha" ||
303  particleName == "He3") {
304 
305  //ph->RegisterProcess(hmsc, particle);
306  ph->RegisterProcess(new G4hMultipleScattering(), particle);
307  ph->RegisterProcess(new G4ionIonisation(), particle);
308 
309  } else if (particleName == "GenericIon") {
310 
311  ph->RegisterProcess(hmsc, particle);
312  ph->RegisterProcess(new G4ionIonisation(), particle);
313 
314  } else if (particleName == "pi+" ||
315  particleName == "pi-" ) {
316 
317  //G4hMultipleScattering* pimsc = new G4hMultipleScattering();
318  ph->RegisterProcess(pimsc, particle);
319  ph->RegisterProcess(new G4hIonisation(), particle);
320  ph->RegisterProcess(pib, particle);
321  ph->RegisterProcess(pip, particle);
322  ph->RegisterProcess(piss, particle);
323 
324  } else if (particleName == "kaon+" ||
325  particleName == "kaon-" ) {
326 
327  //G4hMultipleScattering* kmsc = new G4hMultipleScattering();
328  ph->RegisterProcess(kmsc, particle);
329  ph->RegisterProcess(new G4hIonisation(), particle);
330  ph->RegisterProcess(kb, particle);
331  ph->RegisterProcess(kp, particle);
332  ph->RegisterProcess(kss, particle);
333 
334  } else if (particleName == "proton" ||
335  particleName == "anti_proton") {
336 
337  //G4hMultipleScattering* pmsc = new G4hMultipleScattering();
338  ph->RegisterProcess(pmsc, particle);
339  ph->RegisterProcess(new G4hIonisation(), particle);
340  ph->RegisterProcess(pb, particle);
341  ph->RegisterProcess(pp, particle);
342  ph->RegisterProcess(pss, particle);
343 
344  } else if (particleName == "B+" ||
345  particleName == "B-" ||
346  particleName == "D+" ||
347  particleName == "D-" ||
348  particleName == "Ds+" ||
349  particleName == "Ds-" ||
350  particleName == "anti_He3" ||
351  particleName == "anti_alpha" ||
352  particleName == "anti_deuteron" ||
353  particleName == "anti_lambda_c+" ||
354  particleName == "anti_omega-" ||
355  particleName == "anti_sigma_c+" ||
356  particleName == "anti_sigma_c++" ||
357  particleName == "anti_sigma+" ||
358  particleName == "anti_sigma-" ||
359  particleName == "anti_triton" ||
360  particleName == "anti_xi_c+" ||
361  particleName == "anti_xi-" ||
362  particleName == "deuteron" ||
363  particleName == "lambda_c+" ||
364  particleName == "omega-" ||
365  particleName == "sigma_c+" ||
366  particleName == "sigma_c++" ||
367  particleName == "sigma+" ||
368  particleName == "sigma-" ||
369  particleName == "tau+" ||
370  particleName == "tau-" ||
371  particleName == "triton" ||
372  particleName == "xi_c+" ||
373  particleName == "xi-" ) {
374 
375  ph->RegisterProcess(hmsc, particle);
376  ph->RegisterProcess(new G4hIonisation(), particle);
377  }
378  }
379 
380  // Deexcitation
381  //
384 
385  G4EmModelActivator mact;
386  mact.ConstructProcess();
387 }
static const double MeV
Definition: G4SIunits.hh:211
static G4LossTableManager * Instance()
void SetHighEnergyLimit(G4double)
Definition: G4VEmModel.hh:725
void SetEmModel(G4VEmModel *, G4int index=1)
const G4String & GetParticleName() const
const G4String & GetPhysicsName() const
G4GLOB_DLL std::ostream G4cout
G4bool RegisterProcess(G4VProcess *process, G4ParticleDefinition *particle)
void SetActivationLowEnergyLimit(G4double)
Definition: G4VEmModel.hh:746
void AddEmModel(G4int order, G4VEmModel *, const G4Region *region=0)
static G4PhysicsListHelper * GetPhysicsListHelper()
#define G4endl
Definition: G4ios.hh:61
void SetMinKinEnergy(G4double e)
G4ParticleTable::G4PTblDicIterator * GetParticleIterator() const
double G4double
Definition: G4Types.hh:76
void SetLowEnergyLimit(G4double)
Definition: G4VEmModel.hh:732
void SetAtomDeexcitation(G4VAtomDeexcitation *)
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Member Data Documentation

◆ verbose

G4int G4EmStandardPhysicsGS::verbose
private

Definition at line 66 of file G4EmStandardPhysicsGS.hh.


The documentation for this class was generated from the following files: