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G4NeutronHPJENDLHEData.cc
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25 //
26 // Class Description
27 // Cross-section data set for a high precision (based on JENDL_HE evaluated data
28 // libraries) description of elastic scattering 20 MeV ~ 3 GeV;
29 // Class Description - End
30 
31 // 15-Nov-06 First Implementation is done by T. Koi (SLAC/SCCS)
32 
34 #include "G4SystemOfUnits.hh"
35 #include "G4LPhysicsFreeVector.hh"
36 #include "G4ElementTable.hh"
37 #include "G4NeutronHPData.hh"
38 
40 {
41 
42  G4bool result = true;
43  G4double eKin = aP->GetKineticEnergy();
44  //if(eKin>20*MeV||aP->GetDefinition()!=G4Neutron::Neutron()) result = false;
45  if ( eKin < 20*MeV || 3*GeV < eKin || aP->GetDefinition()!=G4Neutron::Neutron() )
46  {
47  result = false;
48  }
49 // Element Check
50  else if ( !(vElement[ anE->GetIndex() ]) ) result = false;
51 
52  return result;
53 
54 }
55 
56 
57 
59 {
60  ;
61 }
62 
63 
64 
66 :G4VCrossSectionDataSet( "JENDLHE"+reaction+"CrossSection" )
67 {
68  reactionName = reaction;
69  BuildPhysicsTable( *pd );
70 }
71 
72 
73 
75 {
76  ;
77  //delete theCrossSections;
78 }
79 
80 
81 
83 {
84 
85 // if ( &aP != G4Neutron::Neutron() )
86 // throw G4HadronicException(__FILE__, __LINE__, "Attempt to use NeutronHP data for particles other than neutrons!!!");
87  particleName = aP.GetParticleName();
88 
89  G4String baseName = getenv( "G4NEUTRONHPDATA" );
90  G4String dirName = baseName+"/JENDL_HE/"+particleName+"/"+reactionName ;
91  G4String aFSType = "/CrossSection/";
92  G4NeutronHPNames theNames;
93 
94  G4String filename;
95 
96 // Create JENDL_HE data
97 // Create map element or isotope
98 
99  size_t numberOfElements = G4Element::GetNumberOfElements();
100  //theCrossSections = new G4PhysicsTable( numberOfElements );
101 
102  // make a PhysicsVector for each element
103 
104  static G4ThreadLocal G4ElementTable *theElementTable = 0 ; if (!theElementTable) theElementTable= G4Element::GetElementTable();
105  vElement.clear();
106  vElement.resize( numberOfElements );
107  for ( size_t i = 0; i < numberOfElements; ++i )
108  {
109 
110  G4Element* theElement = (*theElementTable)[i];
111  vElement[i] = false;
112 
113  // isotope
114  G4int nIso = (*theElementTable)[i]->GetNumberOfIsotopes();
115  G4int Z = static_cast<G4int> ((*theElementTable)[i]->GetZ());
116  if ( nIso!=0 )
117  {
118  G4bool found_at_least_one = false;
119  for ( G4int i1 = 0; i1 < nIso; i1++ )
120  {
121  G4int A = theElement->GetIsotope(i1)->GetN();
122 
123  if ( isThisNewIsotope( Z , A ) )
124  {
125 
126  std::stringstream ss;
127  ss << dirName << aFSType << Z << "_" << A << "_" << theNames.GetName( Z-1 );
128  filename = ss.str();
129  std::fstream file;
130  file.open ( filename , std::fstream::in );
131  G4int dummy;
132  file >> dummy;
133  if ( file.good() )
134  {
135 
136  //G4cout << "Found file for Z=" << Z << ", A=" << A << ", as " << filename << G4endl;
137  found_at_least_one = true;
138 
139  // read the file
140  G4PhysicsVector* aPhysVec = readAFile ( &file );
141 
142  //Regist
143 
144  registAPhysicsVector( Z , A , aPhysVec );
145 
146  }
147  else
148  {
149  //G4cout << "No file for "<< reactionType << " Z=" << Z << ", A=" << A << G4endl;
150  }
151 
152  file.close();
153 
154  }
155  else
156  {
157  found_at_least_one = TRUE;
158  }
159  }
160 
161  if ( found_at_least_one ) vElement[i] = true;
162 
163  }
164  else
165  {
166  G4StableIsotopes theStableOnes;
167  G4int first = theStableOnes.GetFirstIsotope( Z );
168  G4bool found_at_least_one = FALSE;
169  for ( G4int i1 = 0; i1 < theStableOnes.GetNumberOfIsotopes( static_cast<G4int>(theElement->GetZ() ) ); i1++)
170  {
171  G4int A = theStableOnes.GetIsotopeNucleonCount( first+i1 );
172 
173  if ( isThisNewIsotope( Z , A ) )
174  {
175 
176  std::stringstream ss;
177  ss << dirName << aFSType << Z << "_" << A << "_" << theNames.GetName( Z-1 );
178  filename = ss.str();
179 
180  std::fstream file;
181  file.open ( filename , std::fstream::in );
182  G4int dummy;
183  file >> dummy;
184  if ( file.good() )
185  {
186  //G4cout << "Found file for Z=" << Z << ", A=" << A << ", as " << filename << G4endl;
187  found_at_least_one = TRUE;
188  //Read the file
189 
190  G4PhysicsVector* aPhysVec = readAFile ( &file );
191 
192  //Regist the PhysicsVector
193  registAPhysicsVector( Z , A , aPhysVec );
194 
195  }
196  else
197  {
198  //G4cout << "No file for "<< reactionType << " Z=" << Z << ", A=" << A << G4endl;
199  }
200 
201  file.close();
202  }
203  else
204  {
205  found_at_least_one = TRUE;
206  }
207  }
208 
209  if ( found_at_least_one ) vElement[i] = true;
210 
211  }
212 
213  }
214 
215 }
216 
217 
218 
220 {
221  if(&aP!=G4Neutron::Neutron())
222  throw G4HadronicException(__FILE__, __LINE__, "Attempt to use NeutronHP data for particles other than neutrons!!!");
223 // G4cout << "G4NeutronHPJENDLHEData::DumpPhysicsTable still to be implemented"<<G4endl;
224 }
225 
226 
227 
230 // aTemp
231 {
232 
233  // Primary energy >20MeV
234  // Thus
235  // Not take account of Doppler broadening
236  // also
237  // Not take account of Target thermal motions
238 
239  G4double result = 0;
240 
241  G4double ek = aP->GetKineticEnergy();
242 
243  G4int nIso = anE->GetNumberOfIsotopes();
244  G4int Z = static_cast<G4int> ( anE->GetZ() );
245  if ( nIso!=0 )
246  {
247  for ( G4int i1 = 0; i1 < nIso; i1++ )
248  {
249 
250  G4int A = anE->GetIsotope(i1)->GetN();
251  G4double frac = anE->GetRelativeAbundanceVector()[ i1 ]; // This case do NOT request "*perCent".
252 
253  result += frac * getXSfromThisIsotope( Z , A , ek );
254  //G4cout << reactionType << " XS in barn " << Z << " " << A << " " << frac << " " << getXSfromThisIsotope( Z , A , ek )/barn << G4endl;
255 
256  }
257  }
258  else
259  {
260 
261  G4StableIsotopes theStableOnes;
262  G4int first = theStableOnes.GetFirstIsotope( Z );
263  for ( G4int i1 = 0; i1 < theStableOnes.GetNumberOfIsotopes( static_cast<G4int>(anE->GetZ() ) ); i1++)
264  {
265 
266  G4int A = theStableOnes.GetIsotopeNucleonCount( first+i1 );
267  G4double frac = theStableOnes.GetAbundance( first+i1 )*perCent; // This case request "*perCent".
268 
269  result += frac * getXSfromThisIsotope( Z , A , ek );
270  //G4cout << reactionType << " XS in barn " << Z << " " << A << " " << frac << " " << getXSfromThisIsotope( Z , A , ek )/barn << G4endl;
271 
272  }
273  }
274  return result;
275 
276 }
277 
278 
279 
280 G4PhysicsVector* G4NeutronHPJENDLHEData::readAFile ( std::fstream* file )
281 {
282 
283  G4int dummy;
284  G4int len;
285  *file >> dummy;
286  *file >> len;
287 
288  std::vector< G4double > v_e;
289  std::vector< G4double > v_xs;
290 
291  for ( G4int i = 0 ; i < len ; i++ )
292  {
293  G4double e;
294  G4double xs;
295 
296  *file >> e;
297  *file >> xs;
298  // data are written in eV and barn.
299  v_e.push_back( e*eV );
300  v_xs.push_back( xs*barn );
301  }
302 
303  G4LPhysicsFreeVector* aPhysVec = new G4LPhysicsFreeVector( static_cast< size_t >( len ) , v_e.front() , v_e.back() );
304 
305  for ( G4int i = 0 ; i < len ; i++ )
306  {
307  aPhysVec->PutValues( static_cast< size_t >( i ) , v_e[ i ] , v_xs[ i ] );
308  }
309 
310  return aPhysVec;
311 }
312 
313 
314 
315 G4bool G4NeutronHPJENDLHEData::isThisInMap( G4int z , G4int a )
316 {
317  if ( mIsotope.find ( z ) == mIsotope.end() ) return false;
318  if ( mIsotope.find ( z ) -> second->find ( a ) == mIsotope.find ( z ) -> second->end() ) return false;
319  return true;
320 }
321 
322 
323 
324 void G4NeutronHPJENDLHEData::registAPhysicsVector( G4int Z , G4int A , G4PhysicsVector* aPhysVec )
325 {
326 
327  std::pair< G4int , G4PhysicsVector* > aPair = std::pair < G4int , G4PhysicsVector* > ( A , aPhysVec );
328 
329  std::map < G4int , std::map< G4int , G4PhysicsVector* >* >::iterator itm;
330  itm = mIsotope.find ( Z );
331  if ( itm != mIsotope.end() )
332  {
333  itm->second->insert ( aPair );
334  }
335  else
336  {
337  std::map< G4int , G4PhysicsVector* >* aMap = new std::map< G4int , G4PhysicsVector* >;
338  aMap->insert ( aPair );
339  mIsotope.insert( std::pair< G4int , std::map< G4int , G4PhysicsVector* >* > ( Z , aMap ) );
340  }
341 
342 }
343 
344 
345 
346 G4double G4NeutronHPJENDLHEData::getXSfromThisIsotope( G4int Z , G4int A , G4double ek )
347 {
348 
349  G4double aXSection = 0.0;
350  G4bool outOfRange;
351 
352  G4PhysicsVector* aPhysVec;
353  if ( mIsotope.find ( Z )->second->find ( A ) != mIsotope.find ( Z )->second->end() )
354  {
355 
356  aPhysVec = mIsotope.find ( Z )->second->find ( A )->second;
357  aXSection = aPhysVec->GetValue( ek , outOfRange );
358 
359  }
360  else
361  {
362 
363  //Select closest one in the same Z
364  std::map < G4int , G4PhysicsVector* >::iterator it;
365  G4int delta0 = 99; // no mean for 99
366  for ( it = mIsotope.find ( Z )->second->begin() ; it != mIsotope.find ( Z )->second->end() ; it++ )
367  {
368  G4int delta = std::abs( A - it->first );
369  if ( delta < delta0 ) delta0 = delta;
370  }
371 
372  // Randomize of selection larger or smaller than A
373  if ( G4UniformRand() < 0.5 ) delta0 *= -1;
374  G4int A1 = A + delta0;
375  if ( mIsotope.find ( Z )->second->find ( A1 ) != mIsotope.find ( Z )->second->end() )
376  {
377  aPhysVec = mIsotope.find ( Z )->second->find ( A1 )->second;
378  }
379  else
380  {
381  A1 = A - delta0;
382  aPhysVec = mIsotope.find ( Z )->second->find ( A1 )->second;
383  }
384 
385  aXSection = aPhysVec->GetValue( ek , outOfRange );
386  // X^(2/3) factor
387  aXSection *= std::pow ( 1.0*A/ A1 , 2.0 / 3.0 );
388 
389  }
390 
391  return aXSection;
392 }
size_t GetNumberOfIsotopes() const
Definition: G4Element.hh:158
void PutValues(size_t binNumber, G4double binValue, G4double dataValue)
G4double GetValue(G4double theEnergy, G4bool &isOutRange) const
G4double GetKineticEnergy() const
G4double z
Definition: TRTMaterials.hh:39
G4int GetFirstIsotope(G4int Z)
G4double GetZ() const
Definition: G4Element.hh:131
#define G4ThreadLocal
Definition: tls.hh:52
G4NeutronHPDataUsed GetName(G4int A, G4int Z, G4String base, G4String rest, G4bool &active)
int G4int
Definition: G4Types.hh:78
G4double GetCrossSection(const G4DynamicParticle *, const G4Element *, G4double aT)
const G4String & GetParticleName() const
void DumpPhysicsTable(const G4ParticleDefinition &)
G4int GetN() const
Definition: G4Isotope.hh:94
#define G4UniformRand()
Definition: Randomize.hh:87
static size_t GetNumberOfElements()
Definition: G4Element.cc:402
bool G4bool
Definition: G4Types.hh:79
#define FALSE
Definition: globals.hh:52
G4double * GetRelativeAbundanceVector() const
Definition: G4Element.hh:166
size_t GetIndex() const
Definition: G4Element.hh:181
#define TRUE
Definition: globals.hh:55
static G4Neutron * Neutron()
Definition: G4Neutron.cc:104
G4int GetNumberOfIsotopes(G4int Z)
G4int GetIsotopeNucleonCount(G4int number)
G4bool IsApplicable(const G4DynamicParticle *, const G4Element *)
const G4Isotope * GetIsotope(G4int iso) const
Definition: G4Element.hh:169
float perCent
Definition: hepunit.py:239
const XML_Char int len
G4double GetAbundance(G4int number)
std::vector< G4Element * > G4ElementTable
double G4double
Definition: G4Types.hh:76
static G4ElementTable * GetElementTable()
Definition: G4Element.cc:395
void BuildPhysicsTable(const G4ParticleDefinition &)