source: trunk/source/processes/hadronic/models/neutron_hp/src/G4NeutronHPAngular.cc@ 900

Last change on this file since 900 was 819, checked in by garnier, 17 years ago

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25//
26// neutron_hp -- source file
27// J.P. Wellisch, Nov-1996
28// A prototype of the low energy neutron transport model.
29//
30// 070523 bug fix for G4FPE_DEBUG on by A. Howard ( and T. Koi)
31//
32#include "G4NeutronHPAngular.hh"
33
34void G4NeutronHPAngular::Init(std::ifstream & aDataFile)
35{
36// G4cout << "here we are entering the Angular Init"<<G4endl;
37 aDataFile >> theAngularDistributionType >> targetMass;
38 aDataFile >> frameFlag;
39 if(theAngularDistributionType == 0)
40 {
41 theIsoFlag = true;
42 }
43 else if(theAngularDistributionType==1)
44 {
45 G4int nEnergy;
46 aDataFile >> nEnergy;
47 theCoefficients = new G4NeutronHPLegendreStore(nEnergy);
48 theCoefficients->InitInterpolation(aDataFile);
49 G4double temp, energy;
50 G4int tempdep, nLegendre;
51 G4int i, ii;
52 for (i=0; i<nEnergy; i++)
53 {
54 aDataFile >> temp >> energy >> tempdep >> nLegendre;
55 energy *=eV;
56 theCoefficients->Init(i, energy, nLegendre);
57 theCoefficients->SetTemperature(i, temp);
58 G4double coeff=0;
59 for(ii=0; ii<nLegendre; ii++)
60 {
61 aDataFile >> coeff;
62 theCoefficients->SetCoeff(i, ii+1, coeff);
63 }
64 }
65 }
66 else if (theAngularDistributionType==2)
67 {
68 G4int nEnergy;
69 aDataFile >> nEnergy;
70 theProbArray = new G4NeutronHPPartial(nEnergy, nEnergy);
71 theProbArray->InitInterpolation(aDataFile);
72 G4double temp, energy;
73 G4int tempdep;
74 for(G4int i=0; i<nEnergy; i++)
75 {
76 aDataFile >> temp >> energy >> tempdep;
77 energy *= eV;
78 theProbArray->SetT(i, temp);
79 theProbArray->SetX(i, energy);
80 theProbArray->InitData(i, aDataFile);
81 }
82 }
83 else
84 {
85 theIsoFlag = false;
86 G4cout << "unknown distribution found for Angular"<<G4endl;
87 throw G4HadronicException(__FILE__, __LINE__, "unknown distribution needs implementation!!!");
88 }
89}
90
91void G4NeutronHPAngular::SampleAndUpdate(G4ReactionProduct & aHadron)
92{
93 if(theIsoFlag)
94 {
95// G4cout << "Angular result "<<aHadron.GetTotalMomentum()<<" ";
96// @@@ add code for isotropic emission in CMS.
97 G4double costheta = 2.*G4UniformRand()-1;
98 G4double theta = std::acos(costheta);
99 G4double phi = twopi*G4UniformRand();
100 G4double sinth = std::sin(theta);
101 G4double en = aHadron.GetTotalMomentum();
102 G4ThreeVector temp(en*sinth*std::cos(phi), en*sinth*std::sin(phi), en*std::cos(theta) );
103 aHadron.SetMomentum( temp );
104 aHadron.Lorentz(aHadron, -1.*theTarget);
105 }
106 else
107 {
108 if(theAngularDistributionType == 1) // LAB
109 {
110 G4double en = aHadron.GetTotalMomentum();
111 G4ReactionProduct boosted;
112 boosted.Lorentz(theNeutron, theTarget);
113 G4double kineticEnergy = boosted.GetKineticEnergy();
114 G4double cosTh = theCoefficients->SampleMax(kineticEnergy);
115 G4double theta = std::acos(cosTh);
116 G4double phi = twopi*G4UniformRand();
117 G4double sinth = std::sin(theta);
118 G4ThreeVector temp(en*sinth*std::cos(phi), en*sinth*std::sin(phi), en*std::cos(theta) );
119 aHadron.SetMomentum( temp );
120 }
121 else if(theAngularDistributionType == 2) // costh in CMS
122 {
123 G4ReactionProduct boostedN;
124 boostedN.Lorentz(theNeutron, theTarget);
125 G4double kineticEnergy = boostedN.GetKineticEnergy();
126 G4double cosTh = theProbArray->Sample(kineticEnergy);
127 G4double theta = std::acos(cosTh);
128 G4double phi = twopi*G4UniformRand();
129 G4double sinth = std::sin(theta);
130
131 G4ThreeVector temp(sinth*std::cos(phi), sinth*std::sin(phi), std::cos(theta) ); //CMS
132 G4double en = aHadron.GetTotalEnergy(); // Target rest
133
134 // get trafo from Target rest frame to CMS
135 G4ReactionProduct boostedT;
136 boostedT.Lorentz(theTarget, theTarget);
137
138 G4ThreeVector the3Neutron = boostedN.GetMomentum();
139 G4double nEnergy = boostedN.GetTotalEnergy();
140 G4ThreeVector the3Target = boostedT.GetMomentum();
141 G4double tEnergy = boostedT.GetTotalEnergy();
142 G4double totE = nEnergy+tEnergy;
143 G4ThreeVector the3trafo = -the3Target-the3Neutron;
144 G4ReactionProduct trafo; // for transformation from CMS to target rest frame
145 trafo.SetMomentum(the3trafo);
146 G4double cmsMom = std::sqrt(the3trafo*the3trafo);
147 G4double sqrts = std::sqrt((totE-cmsMom)*(totE+cmsMom));
148 trafo.SetMass(sqrts);
149 trafo.SetTotalEnergy(totE);
150
151 G4double gamma = trafo.GetTotalEnergy()/trafo.GetMass();
152 G4double cosalpha = temp*trafo.GetMomentum()/trafo.GetTotalMomentum()/temp.mag();
153 G4double fac = cosalpha*trafo.GetTotalMomentum()/trafo.GetMass();
154 fac*=gamma;
155
156 G4double mom;
157// For G4FPE_DEBUG ON
158 G4double mom2 = ( en*fac*en*fac -
159 (fac*fac - gamma*gamma)*
160 (en*en - gamma*gamma*aHadron.GetMass()*aHadron.GetMass())
161 );
162 if ( mom2 > 0.0 )
163 mom = std::sqrt( mom2 );
164 else
165 mom = 0.0;
166
167 mom = -en*fac - mom;
168 mom /= (fac*fac-gamma*gamma);
169 temp = mom*temp;
170
171 aHadron.SetMomentum( temp ); // now all in CMS
172 aHadron.SetTotalEnergy( std::sqrt( mom*mom + aHadron.GetMass()*aHadron.GetMass() ) );
173 aHadron.Lorentz(aHadron, trafo); // now in target rest frame
174 }
175 else
176 {
177 throw G4HadronicException(__FILE__, __LINE__, "Tried to sample non isotropic neutron angular");
178 }
179 }
180 aHadron.Lorentz(aHadron, -1.*theTarget);
181// G4cout << aHadron.GetMomentum()<<" ";
182// G4cout << aHadron.GetTotalMomentum()<<G4endl;
183}
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