// This code implementation is the intellectual property of // neutron_hp -- header file // J.P. Wellisch, Nov-1996 // A prototype of the low energy neutron transport model. // // By copying, distributing or modifying the Program (or any work // based on the Program) you indicate your acceptance of this statement, // and all its terms. // // $Id: G4NeutronHPFissionSpectrum.hh,v 1.4 1999/12/15 14:53:12 gunter Exp $ // GEANT4 tag $Name: geant4-01-01 $ // #ifndef G4NeutronHPFissionSpectrum_h #define G4NeutronHPFissionSpectrum_h 1 #include "globals.hh" #include "G4NeutronHPVector.hh" #include "Randomize.hh" #include "G4ios.hh" #include "g4std/fstream" #include "G4VNeutronHPEDis.hh" // we will need a List of these .... one per term. class G4NeutronHPFissionSpectrum : public G4VNeutronHPEDis { public: G4NeutronHPFissionSpectrum() { expm1 = exp(-1.); } ~G4NeutronHPFissionSpectrum() { } inline void Init(G4std::ifstream & aDataFile) { theFractionalProb.Init(aDataFile, eV); theThetaDist.Init(aDataFile, eV); } inline G4double GetFractionalProbability(G4double anEnergy) { return theFractionalProb.GetY(anEnergy); } inline G4double Sample(G4double anEnergy) { G4double theta = theThetaDist.GetY(anEnergy); // here we need to sample Maxwells distribution, if // need be. G4double result, cut; G4double range =50*MeV; G4double max = Maxwell((theta*eV)/2., theta); G4double value; do { result = range*G4UniformRand(); value = Maxwell(result, theta); cut = G4UniformRand(); } while(cut > value/max); return result; } private: // this is the function to sample from. inline G4double Maxwell(G4double anEnergy, G4double theta) { G4double result = sqrt(anEnergy/eV)*exp(-anEnergy/eV/theta); return result; } private: G4double expm1; G4NeutronHPVector theFractionalProb; G4NeutronHPVector theThetaDist; }; #endif