52     fDiffraction(0), fDiffractionRatio(0)
    64     outFile << 
"G4HadronElasticProcess handles the elastic scattering of \n"    65             << 
"hadrons by invoking the following hadronic model(s) and \n"    66             << 
"hadronic cross section(s).\n";
    82   G4double kineticEnergy = track.GetKineticEnergy();
   105       ed << 
" PostStepDoIt failed on element selection" << 
G4endl;
   106       G4Exception(
"G4HadronElasticProcess::PostStepDoIt", 
"had003", 
   137       ed << 
"Target element "<< elm->
GetName()<<
"  Z= "    141       ed << 
" ApplyYourself failed" << 
G4endl;
   142       G4Exception(
"G4HadronElasticProcess::PostStepDoIt", 
"had006", 
   146       result = 
CheckResult(theProj, *targNucleus, result);
   169       ed << 
"Target element "<< elm->
GetName()<<
"  Z= "    172       DumpState(track,
"ChooseHadronicInteraction",ed);
   173       ed << 
" No HadronicInteraction found out" << 
G4endl;
   174       G4Exception(
"G4HadronElasticProcess::PostStepDoIt", 
"had005", 
   178   size_t idx = track.GetMaterialCutsCouple()->GetIndex();
   184     G4cout << 
"G4HadronElasticProcess::PostStepDoIt for "    186        << 
" in " << material->
GetName() 
   200       ed << 
"Target element "<< elm->
GetName()<<
"  Z= "    204       ed << 
" ApplyYourself failed" << 
G4endl;
   205       G4Exception(
"G4HadronElasticProcess::PostStepDoIt", 
"had006", 
   224        << 
" dir= " << outdir
   231   if(efinal < 0.0) { efinal = 0.0; }
   232   if(edep < 0.0)   { edep = 0.0; }
   244   G4TrackStatus status = track.GetTrackStatus();
   251          { status = fStopButAlive; }
   252     else { status = fStopAndKill; }
   275       G4Track* t = 
new G4Track(p, track.GetGlobalTime(), 
   276                    track.GetPosition());
   277       t->SetWeight(weight);
   278       t->SetTouchableHandle(track.GetTouchableHandle());
 
virtual G4double ComputeRatio(const G4ParticleDefinition *, G4double kinEnergy, G4int, G4int)=0
 
G4HadronElasticProcess(const G4String &procName="hadElastic")
 
G4int GetNumberOfSecondaries() const
 
G4ProcessVector * GetAtRestProcessVector(G4ProcessVectorTypeIndex typ=typeGPIL) const
 
std::ostringstream G4ExceptionDescription
 
G4HadSecondary * GetSecondary(size_t i)
 
G4LorentzRotation & GetTrafoToLab()
 
G4double GetEnergyChange() const
 
virtual void PreparePhysicsTable(const G4ParticleDefinition &)
 
virtual void SetLowestEnergy(G4double)
 
virtual ~G4HadronElasticProcess()
 
void SetMomentumDirection(const G4ThreeVector &aDirection)
 
G4ProcessManager * GetProcessManager() const
 
void CheckEnergyMomentumConservation(const G4Track &, const G4Nucleus &)
 
const std::vector< G4double > * GetEnergyCutsVector(size_t pcIdx) const
 
void SetDiffraction(G4HadronicInteraction *, G4VCrossSectionRatio *)
 
#define G4HadronicDeprecate(name)
 
void ClearNumberOfInteractionLengthLeft()
 
G4VCrossSectionRatio * fDiffractionRatio
 
void DumpState(const G4Track &, const G4String &, G4ExceptionDescription &)
 
void SetTrafoToLab(const G4LorentzRotation &aT)
 
void AddDataSet(G4VCrossSectionDataSet *aDataSet)
 
G4double GetKineticEnergy() const
 
void FillResult(G4HadFinalState *aR, const G4Track &aT)
 
const G4String & GetParticleName() const
 
G4double GetLocalEnergyDeposit() const
 
G4GLOB_DLL std::ostream G4cout
 
G4ParticleChange * theTotalResult
 
Hep3Vector & rotateUz(const Hep3Vector &)
 
G4CrossSectionDataStore * GetCrossSectionDataStore()
 
const G4ThreeVector & GetMomentumChange() const
 
static G4Neutron * Neutron()
 
void G4Exception(const char *originOfException, const char *exceptionCode, G4ExceptionSeverity severity, const char *comments)
 
const G4String & GetName() const
 
static G4ProductionCutsTable * GetProductionCutsTable()
 
virtual void ProcessDescription(std::ostream &outFile) const
 
G4Nucleus * GetTargetNucleusPointer()
 
const G4ThreeVector & GetMomentumDirection() const
 
G4DynamicParticle * GetParticle()
 
G4HadronicInteraction * fDiffraction
 
G4HadronicInteraction * ChooseHadronicInteraction(const G4HadProjectile &aHadProjectile, G4Nucleus &aTargetNucleus, G4Material *aMaterial, G4Element *anElement)
 
G4ParticleDefinition * GetDefinition() const
 
void SetRecoilEnergyThreshold(G4double val)
 
G4Element * SampleZandA(const G4DynamicParticle *, const G4Material *, G4Nucleus &target)
 
const G4String & GetModelName() const
 
static const double twopi
 
const G4String & GetName() const
 
virtual G4VParticleChange * PostStepDoIt(const G4Track &aTrack, const G4Step &aStep)
 
Hep3Vector & rotate(double, const Hep3Vector &)
 
void Report(std::ostream &aS)
 
virtual G4HadFinalState * ApplyYourself(const G4HadProjectile &aTrack, G4Nucleus &targetNucleus)=0
 
virtual void PreparePhysicsTable(const G4ParticleDefinition &)
 
virtual void SetLowestEnergyNeutron(G4double)
 
G4HadFinalState * CheckResult(const G4HadProjectile &thePro, const G4Nucleus &targetNucleus, G4HadFinalState *result)