Geant4 9.6.0
Toolkit for the simulation of the passage of particles through matter
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G4GEMCoulombBarrierHE.cc
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26// $Id$
27//
28// Hadronic Process: Nuclear De-excitations
29// by V. Lara (Dec 1999)
30
33#include "G4Pow.hh"
35#include "G4SystemOfUnits.hh"
36
38 G4VCoulombBarrier(anA,aZ)
39{}
40
42{}
43
45 // Calculation of Coulomb potential energy (barrier) for outgoing fragment
46{
47 G4double Barrier = 0.0;
48 if (ZRes > ARes || ARes < 1) {
49 G4cout << "G4GEMCoulombBarrierHE::GetCoulombBarrier: "
50 << "Wrong values for "
51 << "residual nucleus A = " << ARes << " "
52 << "and residual nucleus Z = " << ZRes << G4endl;
53 throw G4HadronicException(__FILE__, __LINE__,"FATAL error");
54 }
55 if (GetZ() == 0) {
56 Barrier = 0.0; // If there is no charge there is neither barrier
57 } else {
58 G4double CompoundRadius = CalcCompoundRadius(ARes);
59 Barrier = ( elm_coupling * GetZ() * ZRes)/(CompoundRadius+3.75*fermi);
60
61 // Barrier penetration coeficient
62 // G4double K = BarrierPenetrationFactor(ZRes);
63 // Barrier *= K;
64
65 Barrier /= (1.0 + std::sqrt(U/static_cast<G4double>(2*ARes)));
66 }
67 return Barrier;
68}
69
70
72{
73 G4Pow* g4pow = G4Pow::GetInstance();
74 G4double AresOneThird = g4pow->Z13(ARes);
75 G4double AejectOneThird = g4pow->Z13(GetA());
76
77 G4double Result = 1.12*(AresOneThird + AejectOneThird) -
78 0.86*(AresOneThird+AejectOneThird)/(AresOneThird*AejectOneThird);
79
80 return Result*fermi;
81}
82
83
double G4double
Definition: G4Types.hh:64
int G4int
Definition: G4Types.hh:66
#define G4endl
Definition: G4ios.hh:52
G4DLLIMPORT std::ostream G4cout
G4double CalcCompoundRadius(G4int ARes) const
G4double GetCoulombBarrier(G4int ARes, G4int ZRes, G4double U) const
G4GEMCoulombBarrierHE(G4int anA, G4int aZ)
Definition: G4Pow.hh:54
static G4Pow * GetInstance()
Definition: G4Pow.cc:50
G4double Z13(G4int Z)
Definition: G4Pow.hh:110
G4int GetA(void) const