45   modifiedOriginal = *originalIncident;
 
   47   targetParticle = *originalTarget;
 
   50     SlowNeutron(originalIncident,modifiedOriginal,targetParticle,targetNucleus );
 
   51     delete originalTarget;
 
   64   G4double p = std::sqrt( std::abs((et-amas)*(et+amas)) );
 
   78   p = std::sqrt( std::abs((et-amas)*(et+amas)) );
 
   88     SlowNeutron( originalIncident, modifiedOriginal, targetParticle, targetNucleus );
 
   89     delete originalTarget;
 
   96   G4bool incidentHasChanged = 
false;
 
   97   G4bool targetHasChanged = 
false;
 
   98   G4bool quasiElastic = 
false;
 
  103   InitialCollision(vec, vecLen, currentParticle, targetParticle,
 
  104                    incidentHasChanged, targetHasChanged);
 
  107                    originalIncident, originalTarget, modifiedOriginal,
 
  108                    targetNucleus, currentParticle, targetParticle,
 
  109                    incidentHasChanged, targetHasChanged, quasiElastic);
 
  112               currentParticle, targetParticle,
 
  115   delete originalTarget;
 
  120 G4RPGNeutronInelastic::SlowNeutron(
const G4HadProjectile* originalIncident,
 
  140       eka = 1.0 + 2.0*cost1*A + A*
A;
 
  143     eka /= (1.0+
A)*(1.0+A);
 
  148     G4double p = std::sqrt(std::abs(en*en-amas*amas));
 
  149     G4double sint = std::sqrt(std::abs(1.0-cost*cost));
 
  161       G4double pO = std::sqrt(pxO*pxO+pyO*pyO+pzO*pzO);
 
  163       sint = 0.5*(std::sqrt(std::abs((1.0-cost)*(1.0+cost)))+std::sqrt(ptO)/pO);
 
  165       if( pyO < 0.0 )ph = ph*1.5;
 
  166       if( std::abs(pxO) > 0.000001 )ph = std::atan2(pyO,pxO);
 
  169       px = cost*cosp*px - sinp*py+sint*cosp*pz;
 
  170       py = cost*sinp*px + cosp*py+sint*sinp*pz;
 
  171       pz = -sint*px     + cost*pz;
 
  175       if( pz < 0.0 )pz *= -1.0;
 
  177     G4double pu = std::sqrt(px*px+py*py+pz*pz);
 
  185     targetParticle.
SetTotalEnergy( std::sqrt( pp*pp + tarmas*tarmas ) );
 
  201   massVec[0] = targetNucleus.
AtomicMass( A+1.0, Z     );
 
  202   massVec[1] = theAtomicMass;
 
  204   if (Z > 1.0) massVec[2] = targetNucleus.
AtomicMass(A, Z-1.0);
 
  206   if (Z > 1.0 && A > 1.0) massVec[3] = targetNucleus.
AtomicMass(A-1.0, Z-1.0 );
 
  208   if (Z > 1.0 && A > 2.0 && A-2.0 > Z-1.0)
 
  209     massVec[4] = targetNucleus.
AtomicMass( A-2.0, Z-1.0 );
 
  211   if (Z > 2.0 && A > 3.0 && A-3.0 > Z-2.0)
 
  212     massVec[5] = targetNucleus.
AtomicMass( A-3.0, Z-2.0 );
 
  214   if (A > 1.0 && A-1.0 > Z) massVec[6] = targetNucleus.
AtomicMass(A-1.0, Z);
 
  215   massVec[7] = massVec[3];
 
  217   if (Z > 2.0 && A > 1.0) massVec[8] = targetNucleus.
AtomicMass( A-1.0,Z-2.0 );
 
  220                           targetNucleus, theAtomicMass, massVec );
 
  226   for( 
G4int i=0; i<vecLen; ++i ) {
 
  247                                    G4bool& incidentHasChanged,
 
  254   std::vector<G4int> fsTypes;
 
  275           incidentHasChanged = 
true;
 
  277           targetHasChanged = 
true;
 
  282         targetHasChanged = 
true;
 
  283         incidentHasChanged = 
true;
 
  287       if (part2 > 
neu && part2 < 
xi0) targetHasChanged = 
true;
 
  304         incidentHasChanged = 
true;
 
  305       } 
else if (part2 == 
neu) {
 
  307           incidentHasChanged = 
true;
 
  308           targetHasChanged = 
true;
 
  314       } 
else if (part2 > 
neu && part2 < 
xi0) {
 
  315         incidentHasChanged = 
true;
 
  316         targetHasChanged = 
true;
 
  320       targetHasChanged = 
true;
 
  333   fsTypes.erase(fsTypes.begin());
 
  334   fsTypes.erase(fsTypes.begin());
 
  339   for(
G4int i=0; i < mult-2; ++i ) {
 
  340     partType = fsTypes[i];
 
  349   CheckQnums(vec, vecLen, currentParticle, targetParticle,
 
  350              testCharge, testBaryon, testStrange);
 
G4double AtomicMass(const G4double A, const G4double Z) const 
 
void SetElement(G4int anIndex, Type *anElement)
 
G4double EvaporationEffects(G4double kineticEnergy)
 
void SetMomentum(const G4ThreeVector &momentum)
 
void SetUpChange(G4FastVector< G4ReactionProduct, 256 > &vec, G4int &vecLen, G4ReactionProduct ¤tParticle, G4ReactionProduct &targetParticle, G4bool &incidentHasChanged)
 
G4HadFinalState * ApplyYourself(const G4HadProjectile &aTrack, G4Nucleus &targetNucleus)
 
void SetKineticEnergy(const G4double en)
 
void SetMomentum(const G4double x, const G4double y, const G4double z)
 
void SetSide(const G4int sid)
 
void CalculateMomenta(G4FastVector< G4ReactionProduct, 256 > &vec, G4int &vecLen, const G4HadProjectile *originalIncident, const G4DynamicParticle *originalTarget, G4ReactionProduct &modifiedOriginal, G4Nucleus &targetNucleus, G4ReactionProduct ¤tParticle, G4ReactionProduct &targetParticle, G4bool &incidentHasChanged, G4bool &targetHasChanged, G4bool quasiElastic)
 
void Initialize(G4int items)
 
G4DynamicParticle * ReturnTargetParticle() const 
 
void SetDefinition(const G4ParticleDefinition *aParticleDefinition)
 
static constexpr double twopi
 
void SetStatusChange(G4HadFinalStateStatus aS)
 
G4int GetMultiplicityT1(G4double KE) const 
 
const G4ParticleDefinition * GetDefinition() const 
 
double A(double temperature)
 
const G4ParticleDefinition * GetDefinition() const 
 
G4ParticleDefinition * particleDef[18]
 
G4double GetKineticEnergy() const 
 
void SetTotalEnergy(const G4double en)
 
const G4LorentzVector & Get4Momentum() const 
 
G4double GetKineticEnergy() const 
 
void SetEnergyChange(G4double anEnergy)
 
G4double GetPDGMass() const 
 
void NuclearReaction(G4FastVector< G4ReactionProduct, 4 > &vec, G4int &vecLen, const G4HadProjectile *originalIncident, const G4Nucleus &aNucleus, const G4double theAtomicMass, const G4double *massVec)
 
T max(const T t1, const T t2)
brief Return the largest of the two arguments 
 
G4double Cinema(G4double kineticEnergy)
 
std::vector< G4int > GetFSPartTypesForNN(G4int mult, G4double KE) const 
 
T min(const T t1, const T t2)
brief Return the smallest of the two arguments 
 
static constexpr double GeV
 
G4ThreeVector GetMomentum() const 
 
G4HadFinalState theParticleChange
 
static constexpr double MeV
 
std::vector< G4int > GetFSPartTypesForNP(G4int mult, G4double KE) const 
 
void CheckQnums(G4FastVector< G4ReactionProduct, 256 > &vec, G4int &vecLen, G4ReactionProduct ¤tParticle, G4ReactionProduct &targetParticle, G4double Q, G4double B, G4double S)
 
static constexpr double pi
 
void AddSecondary(G4DynamicParticle *aP, G4int mod=-1)
 
void SetDefinition(const G4ParticleDefinition *aParticleDefinition)
 
G4int GetMultiplicityT0(G4double KE) const