// // ******************************************************************** // * DISCLAIMER * // * * // * The following disclaimer summarizes all the specific disclaimers * // * of contributors to this software. The specific disclaimers,which * // * govern, are listed with their locations in: * // * http://cern.ch/geant4/license * // * * // * Neither the authors of this software system, nor their employing * // * institutes,nor the agencies providing financial support for this * // * work make any representation or warranty, express or implied, * // * regarding this software system or assume any liability for its * // * use. * // * * // * This code implementation is the intellectual property of the * // * GEANT4 collaboration. * // * 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. * // ******************************************************************** // // neutron_hp -- source file // J.P. Wellisch, Nov-1996 // A prototype of the low energy neutron transport model. // #include "G4NeutronHPLabAngularEnergy.hh" #include "G4Gamma.hh" #include "G4Electron.hh" #include "G4Positron.hh" #include "G4Neutron.hh" #include "G4Proton.hh" #include "G4Deuteron.hh" #include "G4Triton.hh" #include "G4He3.hh" #include "G4Alpha.hh" #include "Randomize.hh" void G4NeutronHPLabAngularEnergy::Init(std::ifstream & aDataFile) { aDataFile >> nEnergies; theManager.Init(aDataFile); theEnergies = new G4double[nEnergies]; nCosTh = new G4int[nEnergies]; theData = new G4NeutronHPVector * [nEnergies]; theSecondManager = new G4InterpolationManager [nEnergies]; for(G4int i=0; i> theEnergies[i]; theEnergies[i]*=eV; aDataFile >> nCosTh[i]; theSecondManager[i].Init(aDataFile); theData[i] = new G4NeutronHPVector[nCosTh[i]]; G4double label; for(G4int ii=0; ii> label; theData[i][ii].SetLabel(label); theData[i][ii].Init(aDataFile, eV); } } } G4ReactionProduct * G4NeutronHPLabAngularEnergy::Sample(G4double anEnergy, G4double massCode, G4double ) { G4ReactionProduct * result = new G4ReactionProduct; G4int Z = static_cast(massCode/1000); G4int A = static_cast(massCode-1000*Z); if(massCode==0) { result->SetDefinition(G4Gamma::Gamma()); } else if(A==0) { result->SetDefinition(G4Electron::Electron()); if(Z==1) result->SetDefinition(G4Positron::Positron()); } else if(A==1) { result->SetDefinition(G4Neutron::Neutron()); if(Z==1) result->SetDefinition(G4Proton::Proton()); } else if(A==2) { result->SetDefinition(G4Deuteron::Deuteron()); } else if(A==3) { result->SetDefinition(G4Triton::Triton()); if(Z==2) result->SetDefinition(G4He3::He3()); } else if(A==4) { result->SetDefinition(G4Alpha::Alpha()); if(Z!=2) throw G4HadronicException(__FILE__, __LINE__, "Unknown ion case 1"); } else { throw G4HadronicException(__FILE__, __LINE__, "G4NeutronHPLabAngularEnergy: Unknown ion case 2"); } // get theta, E G4double cosTh, secEnergy; G4int i, it(0); // find the energy bin for(i=0; iSetKineticEnergy(secEnergy); G4double phi = twopi*G4UniformRand(); G4double theta = std::acos(cosTh); G4double sinth = std::sin(theta); G4double mtot = result->GetTotalMomentum(); G4ThreeVector tempVector(mtot*sinth*std::cos(phi), mtot*sinth*std::sin(phi), mtot*std::cos(theta) ); result->SetMomentum(tempVector); return result; }