105 for(
G4int i=0; i<= nbins; ++i) {
196 if(rndmEngine->
flat()*cs30 < cs3) {
209 if(posiKinEnergy == 0.0) {
211 G4double sint = sqrt((1. - cost)*(1. + cost));
222 pol.
set(-sinphi, cosphi, 0.0);
233 G4double sqgrate = sqrt(tau/tau2)*0.5;
239 G4double epsilqot = epsilmax/epsilmin;
248 greject = 1. - epsil + (2.*
gam*epsil-1.)/(epsil*tau2*tau2);
250 }
while( greject < rndmEngine->
flat());
256 G4double cost = (epsil*tau2-1.)/(epsil*sqg2m1);
257 if(std::abs(cost) > 1.0) {
258 G4cout <<
"### G4eplusTo2GammaOKVIModel WARNING cost= " << cost
259 <<
" positron Ekin(MeV)= " << posiKinEnergy
260 <<
" gamma epsil= " << epsil
262 if(cost > 1.0) cost = 1.0;
265 G4double sint = sqrt((1.+cost)*(1.-cost));
273 G4double phot1Energy = epsil*TotalAvailableEnergy;
275 G4ThreeVector phot1Direction(sint*cos(phi), sint*sin(phi), cost);
276 phot1Direction.
rotateUz(posiDirection);
285 G4double phot2Energy =(1.-epsil)*TotalAvailableEnergy;
287 G4ThreeVector dir = posiDirection*posiP - phot1Direction*phot1Energy;
294 pol.
set(-sinphi, cosphi, 0.0);
296 cost = pol*phot2Direction;
297 pol -= cost*phot2Direction;
310 vdp->push_back(aGamma1);
311 vdp->push_back(aGamma2);
static const G4double emax
G4double G4Exp(G4double initial_x)
Exponential Function double precision.
G4double G4Log(G4double x)
static constexpr double twopi
static constexpr double eV
static constexpr double MeV
static constexpr double pi
static constexpr double TeV
G4GLOB_DLL std::ostream G4cout
void set(double x, double y, double z)
Hep3Vector & rotateUz(const Hep3Vector &)
void SetPolarization(const G4ThreeVector &)
const G4ThreeVector & GetMomentumDirection() const
G4double GetKineticEnergy() const
static G4EmParameters * Instance()
G4double LowestTripletEnergy() const
void SetProposedKineticEnergy(G4double proposedKinEnergy)
void PutValue(const std::size_t index, const G4double value)
G4double Energy(const std::size_t index) const
G4double Value(const G4double energy, std::size_t &lastidx) const
void FillSecondDerivatives(const G4SplineType=G4SplineType::Base, const G4double dir1=0.0, const G4double dir2=0.0)
G4ParticleChangeForGamma * GetParticleChangeForGamma()
void SetTripletModel(G4VEmModel *)
void ProposeTrackStatus(G4TrackStatus status)
void Initialise(const G4ParticleDefinition *, const G4DataVector &) override
static G4PhysicsVector * fCrossSection3G
G4eplusTo3GammaOKVIModel * f3GModel
G4double ComputeCrossSectionPerElectron(G4double kinEnergy)
static G4PhysicsVector * fCrossSection
G4eplusTo2GammaOKVIModel(const G4ParticleDefinition *p=nullptr, const G4String &nam="eplus2ggOKVI")
static G4PhysicsVector * f3GProbability
void SampleSecondaries(std::vector< G4DynamicParticle * > *, const G4MaterialCutsCouple *, const G4DynamicParticle *, G4double tmin=0.0, G4double maxEnergy=DBL_MAX) final
G4double ComputeCrossSectionPerAtom(const G4ParticleDefinition *, G4double kinEnergy, G4double Z, G4double A=0., G4double cutEnergy=0., G4double maxEnergy=DBL_MAX) final
const G4DataVector * fCuts
G4ParticleChangeForGamma * fParticleChange
~G4eplusTo2GammaOKVIModel() override
const G4ParticleDefinition * theGamma
G4double CrossSectionPerVolume(const G4Material *, const G4ParticleDefinition *, G4double kineticEnergy, G4double cutEnergy=0.0, G4double maxEnergy=DBL_MAX) final
G4double ComputeCrossSectionPerElectron(G4double kinEnergy)
void SampleSecondaries(std::vector< G4DynamicParticle * > *, const G4MaterialCutsCouple *, const G4DynamicParticle *, G4double tmin=0.0, G4double maxEnergy=DBL_MAX) final
void SetDelta(G4double val)
void Initialise(const G4ParticleDefinition *, const G4DataVector &) final
T max(const T t1, const T t2)
brief Return the largest of the two arguments
int classic_electr_radius