source: trunk/source/processes/hadronic/models/de_excitation/gem_evaporation/include/G4AlphaGEMCoulombBarrier.hh @ 1197

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26//
27// J. M. Quesada (July 2009) based on G4AlphaCoulombBarrier
28// Coded strictly according to Furihata's GEM paper
29//
30
31
32#ifndef G4AlphaGEMCoulombBarrier_h
33#define G4AlphaGEMCoulombBarrier_h 1
34
35#include "G4GEMCoulombBarrier.hh"
36#include "globals.hh"
37
38class G4AlphaGEMCoulombBarrier : public G4GEMCoulombBarrier
39{
40public:
41  G4AlphaGEMCoulombBarrier() : G4GEMCoulombBarrier(4,2) {};
42  ~G4AlphaGEMCoulombBarrier() {};
43 
44private:
45  G4AlphaGEMCoulombBarrier(const G4AlphaGEMCoulombBarrier & right);
46 
47  const G4AlphaGEMCoulombBarrier & operator=(const G4AlphaGEMCoulombBarrier & right);
48  G4bool operator==(const G4AlphaGEMCoulombBarrier & right) const;
49  G4bool operator!=(const G4AlphaGEMCoulombBarrier & right) const;
50 
51private:
52  G4double BarrierPenetrationFactor(const G4double aZ) const
53  {
54    // Data comes from
55    // Dostrovsky, Fraenkel and Friedlander
56    // Physical Review, vol 116, num. 3 1959
57    // (JMQ 190709: according to notes added on proof)
58    // dataKa = {{20, 0.81}, {30, 0.85}, {40, 0.89}, {50, 0.93}};
59    //
60    G4double K = 1.0;   
61    if (aZ >= 50){
62      K=0.93;     
63    } else if (aZ <= 20) {
64      K=0.81; 
65    } else K=0.729802+0.00402544*aZ-1.17276*1e-6*aZ*aZ+2.31248*1e-8*aZ*aZ*aZ-1.65177*1e-10*aZ*aZ*aZ*aZ; 
66    return K;
67  }
68};
69
70#endif
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