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G4FermiPhaseSpaceDecay.hh
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26 // $Id: G4ExcitationHandler.hh,v 1.13 2010-11-17 16:20:31 vnivanch Exp $
27 // GEANT4 tag $Name: not supported by cvs2svn $
28 //
29 // Hadronic Process: Phase space decay for the Fermi BreakUp model
30 // by V. Lara
31 //
32 // Modifications:
33 // 01.04.2011 General cleanup by V.Ivanchenko:
34 // - IsotropicVector is inlined
35 // - Momentum computation return zero or positive value
36 // - DumpProblem method is added providing more information
37 // - Reduced usage of exotic std functions
38 //
39 
40 #ifndef G4FermiPhaseSpaceDecay_hh
41 #define G4FermiPhaseSpaceDecay_hh 1
42 
43 #include <vector>
45 
46 #include "G4LorentzVector.hh"
47 #include "G4ThreeVector.hh"
48 #include "Randomize.hh"
49 #include "G4Pow.hh"
50 
52 {
53 public:
54 
57 
58  inline std::vector<G4LorentzVector*> *
59  Decay(const G4double, const std::vector<G4double>&) const;
60 
61 private:
62 
63  inline G4double PtwoBody(G4double E, G4double P1, G4double P2) const;
64 
65  inline G4ThreeVector IsotropicVector(const G4double Magnitude = 1.0) const;
66 
67  inline G4double BetaKopylov(G4int) const;
68 
69  std::vector<G4LorentzVector*> *
70  TwoBodyDecay(G4double, const std::vector<G4double>&) const;
71 
72  std::vector<G4LorentzVector*> *
73  NBodyDecay(G4double, const std::vector<G4double>&) const;
74 
75  std::vector<G4LorentzVector*> *
76  KopylovNBodyDecay(G4double, const std::vector<G4double>&) const;
77 
78  void DumpProblem(G4double E, G4double P1, G4double P2, G4double P) const;
79 
81  const G4FermiPhaseSpaceDecay & operator=(const G4FermiPhaseSpaceDecay &);
82  G4bool operator==(const G4FermiPhaseSpaceDecay&);
83  G4bool operator!=(const G4FermiPhaseSpaceDecay&);
84 
85  G4Pow* g4pow;
86 };
87 
88 inline G4double
89 G4FermiPhaseSpaceDecay::PtwoBody(G4double E, G4double P1, G4double P2) const
90 {
91  G4double res = 0.0;
92  G4double P = (E+P1+P2)*(E+P1-P2)*(E-P1+P2)*(E-P1-P2)/(4.0*E*E);
93  if (P>0.0) { res = std::sqrt(P); }
94  else { DumpProblem(E,P1,P2,P); }
95  return res;
96 }
97 
98 inline std::vector<G4LorentzVector*> * G4FermiPhaseSpaceDecay::
99 Decay(G4double parent_mass, const std::vector<G4double>& fragment_masses) const
100 {
101  return KopylovNBodyDecay(parent_mass,fragment_masses);
102 }
103 
104 inline G4double G4FermiPhaseSpaceDecay::BetaKopylov(G4int K) const
105 {
106  G4int N = 3*K - 5;
107  G4double xN = G4double(N);
108  G4double F;
109  //G4double Fmax=std::pow((3.*K-5.)/(3.*K-4.),(3.*K-5.)/2.)*std::sqrt(1-((3.*K-5.)/(3.*K-4.)));
110  // VI variant
111  G4double Fmax = std::sqrt(g4pow->powN(xN/(xN + 1),N)/(xN + 1));
112  G4double chi;
113  do {
114  chi = G4UniformRand();
115  F = std::sqrt(g4pow->powN(chi,N)*(1-chi));
116  } while ( Fmax*G4UniformRand() > F);
117  return chi;
118 }
119 
120 inline G4ThreeVector
121 G4FermiPhaseSpaceDecay::IsotropicVector(G4double Magnitude) const
122  // Samples a isotropic random vectorwith a magnitud given by Magnitude.
123  // By default Magnitude = 1.0
124 {
125  G4double CosTheta = 2.0*G4UniformRand() - 1.0;
126  G4double SinTheta = std::sqrt((1. - CosTheta)*(1. + CosTheta));
127  G4double Phi = CLHEP::twopi*G4UniformRand();
128  G4ThreeVector Vector(Magnitude*std::cos(Phi)*SinTheta,
129  Magnitude*std::sin(Phi)*SinTheta,
130  Magnitude*CosTheta);
131  return Vector;
132 }
133 
134 #endif