source: trunk/source/processes/hadronic/models/neutron_hp/src/G4NeutronHPLabAngularEnergy.cc @ 1055

Last change on this file since 1055 was 962, checked in by garnier, 15 years ago

update processes

File size: 13.2 KB
Line 
1//
2// ********************************************************************
3// * License and Disclaimer                                           *
4// *                                                                  *
5// * The  Geant4 software  is  copyright of the Copyright Holders  of *
6// * the Geant4 Collaboration.  It is provided  under  the terms  and *
7// * conditions of the Geant4 Software License,  included in the file *
8// * LICENSE and available at  http://cern.ch/geant4/license .  These *
9// * include a list of copyright holders.                             *
10// *                                                                  *
11// * Neither the authors of this software system, nor their employing *
12// * institutes,nor the agencies providing financial support for this *
13// * work  make  any representation or  warranty, express or implied, *
14// * regarding  this  software system or assume any liability for its *
15// * use.  Please see the license in the file  LICENSE  and URL above *
16// * for the full disclaimer and the limitation of liability.         *
17// *                                                                  *
18// * This  code  implementation is the result of  the  scientific and *
19// * technical work of the GEANT4 collaboration.                      *
20// * By using,  copying,  modifying or  distributing the software (or *
21// * any work based  on the software)  you  agree  to acknowledge its *
22// * use  in  resulting  scientific  publications,  and indicate your *
23// * acceptance of all terms of the Geant4 Software license.          *
24// ********************************************************************
25//
26// neutron_hp -- source file
27// J.P. Wellisch, Nov-1996
28// A prototype of the low energy neutron transport model.
29//
30// 080808 Bug fix in serching mu bin and index for theBuff2b by T. Koi
31//
32#include "G4NeutronHPLabAngularEnergy.hh"
33#include "G4Gamma.hh"
34#include "G4Electron.hh"
35#include "G4Positron.hh"
36#include "G4Neutron.hh"
37#include "G4Proton.hh"
38#include "G4Deuteron.hh"
39#include "G4Triton.hh"
40#include "G4He3.hh"
41#include "G4Alpha.hh"
42#include "Randomize.hh"
43
44void G4NeutronHPLabAngularEnergy::Init(std::ifstream & aDataFile)
45{
46  aDataFile >> nEnergies;
47  theManager.Init(aDataFile);
48  theEnergies = new G4double[nEnergies];
49  nCosTh = new G4int[nEnergies];
50  theData = new G4NeutronHPVector * [nEnergies];
51  theSecondManager = new G4InterpolationManager [nEnergies];
52  for(G4int i=0; i<nEnergies; i++)
53  {
54    aDataFile >> theEnergies[i];
55    theEnergies[i]*=eV;
56    aDataFile >> nCosTh[i];
57    theSecondManager[i].Init(aDataFile); 
58    theData[i] = new G4NeutronHPVector[nCosTh[i]];
59    G4double label;
60    for(G4int ii=0; ii<nCosTh[i]; ii++)
61    {
62      aDataFile >> label;
63      theData[i][ii].SetLabel(label);
64      theData[i][ii].Init(aDataFile, eV);
65    }
66  }
67}
68
69G4ReactionProduct * G4NeutronHPLabAngularEnergy::Sample(G4double anEnergy, G4double massCode, G4double )
70{
71   G4ReactionProduct * result = new G4ReactionProduct;
72   G4int Z = static_cast<G4int>(massCode/1000);
73   G4int A = static_cast<G4int>(massCode-1000*Z);
74
75   if(massCode==0)
76   {
77     result->SetDefinition(G4Gamma::Gamma());
78   }
79   else if(A==0)
80   {
81     result->SetDefinition(G4Electron::Electron());     
82     if(Z==1) result->SetDefinition(G4Positron::Positron());
83   }
84   else if(A==1)
85   {
86     result->SetDefinition(G4Neutron::Neutron());
87     if(Z==1) result->SetDefinition(G4Proton::Proton());
88   }
89   else if(A==2)
90   {
91     result->SetDefinition(G4Deuteron::Deuteron());     
92   }
93   else if(A==3)
94   {
95     result->SetDefinition(G4Triton::Triton()); 
96     if(Z==2) result->SetDefinition(G4He3::He3());
97   }
98   else if(A==4)
99   {
100     result->SetDefinition(G4Alpha::Alpha());
101     if(Z!=2) throw G4HadronicException(__FILE__, __LINE__, "Unknown ion case 1");   
102   }
103   else
104   {
105     throw G4HadronicException(__FILE__, __LINE__, "G4NeutronHPLabAngularEnergy: Unknown ion case 2");
106   }
107   
108   // get theta, E
109   G4double cosTh, secEnergy;
110   G4int i, it(0);
111   // find the energy bin
112   for(i=0; i<nEnergies; i++)
113   {
114     it = i;
115     if ( anEnergy < theEnergies[i] ) break;
116   }
117   //080808
118   //if ( it == 0 || it == nEnergies-1 ) // it marks the energy bin
119   if ( it == 0 ) // it marks the energy bin
120   {
121if(it==0) G4cout << "080808 Something unexpected is happen in G4NeutronHPLabAngularEnergy " << G4endl;
122     // integrate the prob for each costh, and select theta.
123     G4double * running = new G4double [nCosTh[it]];
124     running[0]=0;
125     for(i=0;i<nCosTh[it]; i++)
126     {
127       if(i!=0) running[i] = running[i-1];
128       running[i]+=theData[it][i].GetIntegral(); // Does interpolated integral.
129     }
130     G4double random = running[nCosTh[it]-1]*G4UniformRand();
131     G4int ith(0);
132     for(i=0;i<nCosTh[it]; i++)
133     {
134       ith = i;
135       if(random<running[i]) break;
136     }
137     //080807
138     //if ( ith == 0 || ith == nCosTh[it]-1 ) //ith marks the angluar bin
139     if ( ith == 0 ) //ith marks the angluar bin
140     {
141        cosTh = theData[it][ith].GetLabel();
142        secEnergy = theData[it][ith].Sample();
143        currentMeanEnergy = theData[it][ith].GetMeanX();
144     }
145     else
146     {
147       //080808
148       //G4double x1 = theData[it][ith-1].GetIntegral();
149       //G4double x2 = theData[it][ith].GetIntegral();
150       G4double x1 = running [ ith-1 ];
151       G4double x2 = running [ ith ];
152       G4double x = random;
153       G4double y1 = theData[it][ith-1].GetLabel();
154       G4double y2 = theData[it][ith].GetLabel();
155       cosTh = theInt.Interpolate(theSecondManager[it].GetInverseScheme(ith),
156                                  x, x1, x2, y1, y2);
157       G4NeutronHPVector theBuff1;
158       theBuff1.SetInterpolationManager(theData[it][ith-1].GetInterpolationManager());
159       G4NeutronHPVector theBuff2;
160       theBuff2.SetInterpolationManager(theData[it][ith].GetInterpolationManager());
161       x1=y1;
162       x2=y2;
163       G4double y, mu;
164       for(i=0;i<theData[it][ith-1].GetVectorLength(); i++)
165       {
166         mu = theData[it][ith-1].GetX(i);
167         y1 = theData[it][ith-1].GetY(i);
168         y2 = theData[it][ith].GetY(mu);
169
170         y = theInt.Interpolate(theSecondManager[it].GetScheme(ith), 
171                                cosTh, x1,x2,y1,y2);
172         theBuff1.SetData(i, mu, y);
173       }
174       for(i=0;i<theData[it][ith].GetVectorLength(); i++)
175       {
176         mu = theData[it][ith].GetX(i);
177         y1 = theData[it][ith-1].GetY(mu);
178         y2 = theData[it][ith].GetY(i);
179         y = theInt.Interpolate(theSecondManager[it].GetScheme(ith), 
180                                cosTh, x1,x2,y1,y2);
181         theBuff2.SetData(i, mu, y);
182       }
183       G4NeutronHPVector theStore;
184       theStore.Merge(&theBuff1, &theBuff2);
185       secEnergy = theStore.Sample();
186       currentMeanEnergy = theStore.GetMeanX();
187     }
188     delete [] running;
189   }
190   else // this is the small big else.
191   {
192     G4double x, x1, x2, y1, y2, y, tmp, E;
193     // integrate the prob for each costh, and select theta.
194     G4NeutronHPVector run1;
195     run1.SetY(0, 0.);
196     for(i=0;i<nCosTh[it-1]; i++)
197     {
198       if(i!=0) run1.SetY(i, run1.GetY(i-1));
199       run1.SetX(i, theData[it-1][i].GetLabel());
200       run1.SetY(i, run1.GetY(i)+theData[it-1][i].GetIntegral());
201     }
202     G4NeutronHPVector run2;
203     run2.SetY(0, 0.); 
204     for(i=0;i<nCosTh[it]; i++)
205     {
206       if(i!=0) run2.SetY(i, run2.GetY(i-1));
207       run2.SetX(i, theData[it][i].GetLabel());
208       run2.SetY(i, run2.GetY(i)+theData[it][i].GetIntegral());
209     }
210     // get the distributions for the correct neutron energy
211     x = anEnergy;
212     x1 = theEnergies[it-1];
213     x2 = theEnergies[it];
214     G4NeutronHPVector thBuff1; // to be interpolated as run1.
215     thBuff1.SetInterpolationManager(theSecondManager[it-1]);
216     for(i=0; i<run1.GetVectorLength(); i++)
217     {
218       tmp = run1.GetX(i); //theta
219       y1 = run1.GetY(i); // integral
220       y2 = run2.GetY(tmp);
221       y = theInt.Interpolate(theManager.GetScheme(it), x, x1,x2,y1,y2);
222       thBuff1.SetData(i, tmp, y);
223     }
224     G4NeutronHPVector thBuff2;
225     thBuff2.SetInterpolationManager(theSecondManager[it]);
226     for(i=0; i<run2.GetVectorLength(); i++)
227     {
228       tmp = run2.GetX(i); //theta
229       y1 = run1.GetY(tmp); // integral
230       y2 = run2.GetY(i);
231       y = theInt.Lin(x, x1,x2,y1,y2);
232       thBuff2.SetData(i, tmp, y);
233     }
234     G4NeutronHPVector theThVec;
235     theThVec.Merge(&thBuff1 ,&thBuff2); // takes care of interpolation
236     G4double random = (theThVec.GetY(theThVec.GetVectorLength()-1)
237                        -theThVec.GetY(0))   *G4UniformRand();
238     G4int ith(0);
239     for(i=1;i<theThVec.GetVectorLength(); i++)
240     {
241       ith = i;
242       if(random<theThVec.GetY(i)-theThVec.GetY(0)) break;
243     }
244     {
245       // calculate theta
246       G4double x, x1, x2, y1, y2;
247       x =  random;
248       x1 = theThVec.GetY(ith-1)-theThVec.GetY(0); // integrals
249       x2 = theThVec.GetY(ith)-theThVec.GetY(0);
250       y1 = theThVec.GetX(ith-1); // std::cos(theta)
251       y2 = theThVec.GetX(ith);
252       cosTh = theInt.Interpolate(theSecondManager[it].GetScheme(ith), 
253                                  x, x1,x2,y1,y2);
254     }
255     G4int i1(0), i2(0);
256     // get the indixes of the vectors close to theta for low energy
257     // first it-1 !!!! i.e. low in energy
258     for(i=0; i<nCosTh[it-1]; i++)
259     {
260       i1 = i;
261       if(cosTh<theData[it-1][i].GetLabel()) break;
262     }
263     // now get the prob at this energy for the right theta value
264     x = cosTh;
265     x1 = theData[it-1][i1-1].GetLabel();
266     x2 = theData[it-1][i1].GetLabel();
267     G4NeutronHPVector theBuff1a;
268     theBuff1a.SetInterpolationManager(theData[it-1][i1-1].GetInterpolationManager());
269     for(i=0;i<theData[it-1][i1-1].GetVectorLength(); i++)
270     {
271       E = theData[it-1][i1-1].GetX(i);
272       y1 = theData[it-1][i1-1].GetY(i);
273       y2 = theData[it-1][i1].GetY(E);
274       y = theInt.Lin(x, x1,x2,y1,y2);
275       theBuff1a.SetData(i, E, y); // wrong E, right theta.
276     }
277     G4NeutronHPVector theBuff2a;
278     theBuff2a.SetInterpolationManager(theData[it-1][i1].GetInterpolationManager());
279     for(i=0;i<theData[it-1][i1].GetVectorLength(); i++)
280     {
281       E = theData[it-1][i1].GetX(i);
282       y1 = theData[it-1][i1-1].GetY(E);
283       y2 = theData[it-1][i1].GetY(i);
284       y = theInt.Lin(x, x1,x2,y1,y2);
285       theBuff2a.SetData(i, E, y); // wrong E, right theta.
286     }
287     G4NeutronHPVector theStore1;
288     theStore1.Merge(&theBuff1a, &theBuff2a); // wrong E, right theta, complete binning
289
290     // get the indixes of the vectors close to theta for high energy
291     // then it !!!! i.e. high in energy
292     for(i=0; i<nCosTh[it]; i++)
293     {
294       i2 = i;
295       if(cosTh<theData[it][i2].GetLabel()) break;
296     }                  // sonderfaelle mit i1 oder i2 head on fehlen. @@@@@
297     x1 = theData[it][i2-1].GetLabel();
298     x2 = theData[it][i2].GetLabel();
299     G4NeutronHPVector theBuff1b;
300     theBuff1b.SetInterpolationManager(theData[it][i2-1].GetInterpolationManager());
301     for(i=0;i<theData[it][i2-1].GetVectorLength(); i++)
302     {
303       E = theData[it][i2-1].GetX(i);
304       y1 = theData[it][i2-1].GetY(i);
305       y2 = theData[it][i2].GetY(E);
306       y = theInt.Lin(x, x1,x2,y1,y2);
307       theBuff1b.SetData(i, E, y); // wrong E, right theta.
308     }
309     G4NeutronHPVector theBuff2b;
310     theBuff2b.SetInterpolationManager(theData[it][i2].GetInterpolationManager());
311     //080808  i1 -> i2
312     //for(i=0;i<theData[it][i1].GetVectorLength(); i++)
313     for(i=0;i<theData[it][i2].GetVectorLength(); i++)
314     {
315       //E = theData[it][i1].GetX(i);
316       //y1 = theData[it][i1-1].GetY(E);
317       //y2 = theData[it][i1].GetY(i);
318       E = theData[it][i2].GetX(i);
319       y1 = theData[it][i2-1].GetY(E);
320       y2 = theData[it][i2].GetY(i);
321       y = theInt.Lin(x, x1,x2,y1,y2);
322       theBuff2b.SetData(i, E, y); // wrong E, right theta.
323     }
324     G4NeutronHPVector theStore2;
325     theStore2.Merge(&theBuff1b, &theBuff2b); // wrong E, right theta, complete binning
326     // now get to the right energy.
327
328     x = anEnergy;
329     x1 = theEnergies[it-1];
330     x2 = theEnergies[it];
331     G4NeutronHPVector theOne1;
332     theOne1.SetInterpolationManager(theStore1.GetInterpolationManager());
333     for(i=0; i<theStore1.GetVectorLength(); i++)
334     {
335       E = theStore1.GetX(i);
336       y1 = theStore1.GetY(i);
337       y2 = theStore2.GetY(E);
338       y = theInt.Interpolate(theManager.GetScheme(it), x, x1,x2,y1,y2);
339       theOne1.SetData(i, E, y); // both correct
340     }
341     G4NeutronHPVector theOne2;
342     theOne2.SetInterpolationManager(theStore2.GetInterpolationManager());
343     for(i=0; i<theStore2.GetVectorLength(); i++)
344     {
345       E = theStore2.GetX(i);
346       y1 = theStore1.GetY(E);
347       y2 = theStore2.GetY(i);
348       y = theInt.Interpolate(theManager.GetScheme(it), x, x1,x2,y1,y2);
349       theOne2.SetData(i, E, y); // both correct
350     }
351     G4NeutronHPVector theOne;
352     theOne.Merge(&theOne1, &theOne2); // both correct, complete binning
353
354     secEnergy = theOne.Sample();
355     currentMeanEnergy = theOne.GetMeanX();
356   }
357
358// now do random direction in phi, and fill the result.
359
360   result->SetKineticEnergy(secEnergy);
361   
362   G4double phi = twopi*G4UniformRand();
363   G4double theta = std::acos(cosTh);
364   G4double sinth = std::sin(theta);
365   G4double mtot = result->GetTotalMomentum(); 
366   G4ThreeVector tempVector(mtot*sinth*std::cos(phi), mtot*sinth*std::sin(phi), mtot*std::cos(theta) );
367   result->SetMomentum(tempVector);
368   
369   return result;
370}
Note: See TracBrowser for help on using the repository browser.