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geant4/source/particles/leptons/src/G4NeutrinoE.cc
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// 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.
//
// $Id: G4NeutrinoE.cc,v 1.3 2000/02/27 06:23:41 kurasige Exp $
// GEANT4 tag $Name: geant4-03-00 $
//
//
// ----------------------------------------------------------------------
// GEANT 4 class implementation file
//
// For information related to this code contact:
// CERN, CN Division, ASD Group
// History: first implementation, based on object model of
// 4th April 1996, G.Cosmo
// by H.Kurashige,7 July 1996
// **********************************************************************
#include "g4std/fstream"
#include "g4std/iomanip"
#include "G4NeutrinoE.hh"
// ######################################################################
// ### NEUTRINO ###
// ######################################################################
G4NeutrinoE::G4NeutrinoE(
const G4String& aName, G4double mass,
G4double width, G4double charge,
G4int iSpin, G4int iParity,
G4int iConjugation, G4int iIsospin,
G4int iIsospin3, G4int gParity,
const G4String& pType, G4int lepton,
G4int baryon, G4int encoding,
G4bool stable, G4double lifetime,
G4DecayTable *decaytable )
: G4VLepton( aName,mass,width,charge,iSpin,iParity,
iConjugation,iIsospin,iIsospin3,gParity,pType,
lepton,baryon,encoding,stable,lifetime,decaytable )
{
SetParticleSubType("e");
}
// ......................................................................
// ... static member definitions ...
// ......................................................................
//
// Arguments for constructor are as follows
// name mass width charge
// 2*spin parity C-conjugation
// 2*Isospin 2*Isospin3 G-parity
// type lepton number baryon number PDG encoding
// stable lifetime decay table
G4NeutrinoE G4NeutrinoE::theNeutrinoE(
"nu_e", 0.0*MeV, 0.0*MeV, 0.0,
1, 0, 0,
0, 0, 0,
"lepton", 1, 0, 12,
true, 0.0, NULL
);
G4NeutrinoE* G4NeutrinoE::NeutrinoEDefinition() {return &theNeutrinoE;}
// initialization for static cut values
G4double G4NeutrinoE::theNeutrinoELengthCut = -1.0;
G4double* G4NeutrinoE::theNeutrinoEKineticEnergyCuts = NULL;
// **********************************************************************
// **************************** SetCuts *********************************
// **********************************************************************
void G4NeutrinoE::SetCuts(G4double aCut)
{
theCutInMaxInteractionLength = aCut;
const G4MaterialTable* materialTable = G4Material::GetMaterialTable();
// Create the vector of cuts in energy
// corresponding to the stopping range cut
if(theKineticEnergyCuts) delete [] theKineticEnergyCuts;
theKineticEnergyCuts = new G4double [materialTable->length()];
// Build range vector for every material, convert cut into energy-cut,
// fill theKineticEnergyCuts and delete the range vector
for (G4int J=0; J<materialTable->length(); J++)
{
G4Material* aMaterial = (*materialTable)[J];
theKineticEnergyCuts[J] = 0.0*keV;
}
theNeutrinoELengthCut = theCutInMaxInteractionLength;
theNeutrinoEKineticEnergyCuts = theKineticEnergyCuts;
// Rebuild the physics tables for every process for this particle type
}