64 G4cout <<
"G4LivermoreNuclearGammaConversionModel is constructed " <<
G4endl;
90 G4cout <<
"Calling Initialise() of G4LivermoreNuclearGammaConversionModel."
105 char* path = std::getenv(
"G4LEDATA");
112 for(
G4int i=0; i<numOfCouples; ++i)
119 for (
G4int j=0; j<nelm; ++j)
157 G4cout <<
"Calling ReadData() of G4LivermoreNuclearGammaConversionModel"
162 if(
data[
Z]) {
return; }
164 const char* datadir = path;
168 datadir = std::getenv(
"G4LEDATA");
171 G4Exception(
"G4LivermoreNuclearGammaConversionModel::ReadData()",
173 "Environment variable G4LEDATA not defined");
180 std::ostringstream ost;
181 ost << datadir <<
"/livermore/pairdata/pp-pair-cs-" <<
Z <<
".dat";
182 std::ifstream fin(ost.str().c_str());
187 ed <<
"G4LivermoreNuclearGammaConversionModel data file <" << ost.str().c_str()
188 <<
"> is not opened!" <<
G4endl;
189 G4Exception(
"G4LivermoreNuclearGammaConversionModel::ReadData()",
191 ed,
"G4LEDATA version should be G4EMLOW6.27 or later.");
198 <<
" is opened by G4LivermoreNuclearGammaConversionModel" <<
G4endl;}
217 G4cout <<
"Calling ComputeCrossSectionPerAtom() of G4LivermoreNuclearGammaConversionModel"
227 if(intZ < 1 || intZ >
maxZ) {
return xs; }
237 if(!pv) {
return xs; }
240 xs = pv->
Value(GammaEnergy);
245 G4cout <<
"****** DEBUG: tcs value for Z=" <<
Z <<
" at energy (MeV)="
247 G4cout <<
" cs (Geant4 internal unit)=" << xs <<
G4endl;
248 G4cout <<
" -> first cs value in EADL data file (iu) =" << (*pv)[0] <<
G4endl;
249 G4cout <<
" -> last cs value in EADL data file (iu) =" << (*pv)[
n] <<
G4endl;
250 G4cout <<
"*********************************************************" <<
G4endl;
258 std::vector<G4DynamicParticle*>* fvect,
274 G4cout <<
"Calling SampleSecondaries() of G4LivermoreNuclearGammaConversionModel"
295 if (element ==
nullptr)
297 G4cout <<
"G4LivermoreNuclearGammaConversionModel::SampleSecondaries - element = 0"
302 if (ionisation ==
nullptr)
304 G4cout <<
"G4LivermoreNuclearGammaConversionModel::SampleSecondaries - ionisation = 0"
311 if (photonEnergy > 50. *
MeV) fZ += 8. * (element->
GetfCoulomb());
319 G4double epsilon1 = 0.5 - 0.5 * std::sqrt(1. - screenMin / screenMax) ;
321 G4double epsilonRange = 0.5 - epsilonMin ;
355 electronTotEnergy = (1. -
epsilon) * photonEnergy;
356 positronTotEnergy =
epsilon * photonEnergy;
360 positronTotEnergy = (1. -
epsilon) * photonEnergy;
361 electronTotEnergy =
epsilon * photonEnergy;
385 G4double dxEle= std::sin(thetaEle)*std::cos(phi),dyEle= std::sin(thetaEle)*std::sin(phi),dzEle=std::cos(thetaEle);
386 G4double dxPos=-std::sin(thetaPos)*std::cos(phi),dyPos=-std::sin(thetaPos)*std::sin(phi),dzPos=std::cos(thetaPos);
395 electronDirection.
rotateUz(photonDirection);
405 positronDirection.
rotateUz(photonDirection);
412 fvect->push_back(particle1);
413 fvect->push_back(particle2);
430 if (screenVariable > 1.)
431 value = 42.24 - 8.368 *
G4Log(screenVariable + 0.952);
433 value = 42.392 - screenVariable * (7.796 - 1.961 * screenVariable);
446 if (screenVariable > 1.)
447 value = 42.24 - 8.368 *
G4Log(screenVariable + 0.952);
449 value = 41.405 - screenVariable * (5.828 - 0.8945 * screenVariable);
G4double epsilon(G4double density, G4double temperature)
std::vector< const G4Element * > G4ElementVector
void G4Exception(const char *originOfException, const char *exceptionCode, G4ExceptionSeverity severity, const char *description)
std::ostringstream G4ExceptionDescription
G4double G4Exp(G4double initial_x)
Exponential Function double precision.
G4double G4Log(G4double x)
static constexpr double twopi
static constexpr double GeV
static constexpr double MeV
#define G4MUTEX_INITIALIZER
G4GLOB_DLL std::ostream G4cout
Hep3Vector & rotateUz(const Hep3Vector &)
const G4ThreeVector & GetMomentumDirection() const
G4ParticleDefinition * GetDefinition() const
G4double GetKineticEnergy() const
static G4Electron * Electron()
G4double GetfCoulomb() const
G4IonisParamElm * GetIonisation() const
G4double GetlogZ3() const
void SampleSecondaries(std::vector< G4DynamicParticle * > *, const G4MaterialCutsCouple *, const G4DynamicParticle *, G4double tmin, G4double maxEnergy) override
G4double ScreenFunction2(G4double screenVariable)
static G4PhysicsFreeVector * data[maxZ+1]
virtual ~G4LivermoreNuclearGammaConversionModel()
G4double ScreenFunction1(G4double screenVariable)
G4double ComputeCrossSectionPerAtom(const G4ParticleDefinition *, G4double kinEnergy, G4double Z, G4double A=0, G4double cut=0, G4double emax=DBL_MAX) override
G4double MinPrimaryEnergy(const G4Material *, const G4ParticleDefinition *, G4double) override
G4ParticleChangeForGamma * fParticleChange
void InitialiseForElement(const G4ParticleDefinition *, G4int Z) override
void InitialiseLocal(const G4ParticleDefinition *, G4VEmModel *masterModel) override
void ReadData(size_t Z, const char *path=0)
G4LivermoreNuclearGammaConversionModel(const G4ParticleDefinition *p=nullptr, const G4String &nam="LivermoreNuclearConversion")
void Initialise(const G4ParticleDefinition *, const G4DataVector &) override
const G4Material * GetMaterial() const
void SetProposedKineticEnergy(G4double proposedKinEnergy)
G4bool Retrieve(std::ifstream &fIn, G4bool ascii=false)
G4double Value(const G4double energy, std::size_t &lastidx) const
std::size_t GetVectorLength() const
void FillSecondDerivatives(const G4SplineType=G4SplineType::Base, const G4double dir1=0.0, const G4double dir2=0.0)
static G4Positron * Positron()
const G4MaterialCutsCouple * GetMaterialCutsCouple(G4int i) const
std::size_t GetTableSize() const
static G4ProductionCutsTable * GetProductionCutsTable()
void SetElementSelectors(std::vector< G4EmElementSelector * > *)
G4ParticleChangeForGamma * GetParticleChangeForGamma()
G4double LowEnergyLimit() const
std::vector< G4EmElementSelector * > * GetElementSelectors()
G4double HighEnergyLimit() const
const G4Element * SelectRandomAtom(const G4MaterialCutsCouple *, const G4ParticleDefinition *, G4double kineticEnergy, G4double cutEnergy=0.0, G4double maxEnergy=DBL_MAX)
void InitialiseElementSelectors(const G4ParticleDefinition *, const G4DataVector &)
void ProposeTrackStatus(G4TrackStatus status)
T max(const T t1, const T t2)
brief Return the largest of the two arguments
T min(const T t1, const T t2)
brief Return the smallest of the two arguments
G4Mutex LivermoreNuclearGammaConversionModelMutex