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Geant4/processes/hadronic/models/de_excitation/ablation/src/G4WilsonAblationModel.cc

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Differences between /processes/hadronic/models/de_excitation/ablation/src/G4WilsonAblationModel.cc (Version 11.3.0) and /processes/hadronic/models/de_excitation/ablation/src/G4WilsonAblationModel.cc (Version 9.3)


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 33 // * acceptance of all terms of the Geant4 Sof     33 // * acceptance of all terms of the Geant4 Software license.          *
 34 // *******************************************     34 // ********************************************************************
 35 //                                                 35 //
 36 // %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%     36 // %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
 37 //                                                 37 //
 38 // MODULE:              G4WilsonAblationModel.     38 // MODULE:              G4WilsonAblationModel.cc
 39 //                                                 39 //
 40 // Version:   1.0                                  40 // Version:   1.0
 41 // Date:    08/12/2009                             41 // Date:    08/12/2009
 42 // Author:    P R Truscott                         42 // Author:    P R Truscott
 43 // Organisation:  QinetiQ Ltd, UK                  43 // Organisation:  QinetiQ Ltd, UK
 44 // Customer:    ESA/ESTEC, NOORDWIJK               44 // Customer:    ESA/ESTEC, NOORDWIJK
 45 // Contract:    17191/03/NL/LvH                    45 // Contract:    17191/03/NL/LvH
 46 //                                                 46 //
 47 // %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%     47 // %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
 48 //                                                 48 //
 49 // CHANGE HISTORY                                  49 // CHANGE HISTORY
 50 // --------------                                  50 // --------------
 51 //                                                 51 //
 52 // 6 October 2003, P R Truscott, QinetiQ Ltd,      52 // 6 October 2003, P R Truscott, QinetiQ Ltd, UK
 53 // Created.                                        53 // Created.
 54 //                                                 54 //
 55 // 15 March 2004, P R Truscott, QinetiQ Ltd, U     55 // 15 March 2004, P R Truscott, QinetiQ Ltd, UK
 56 // Beta release                                    56 // Beta release
 57 //                                                 57 //
 58 // 08 December 2009, P R Truscott, QinetiQ Ltd     58 // 08 December 2009, P R Truscott, QinetiQ Ltd, UK
 59 // Ver 1.0                                         59 // Ver 1.0
 60 // Updated as a result of changes in the G4Eva     60 // Updated as a result of changes in the G4Evaporation classes.  These changes
 61 // affect mostly SelectSecondariesByEvaporatio     61 // affect mostly SelectSecondariesByEvaporation, and now you have variables
 62 // associated with the evaporation model which     62 // associated with the evaporation model which can be changed:
 63 //    OPTxs to select the inverse cross-sectio     63 //    OPTxs to select the inverse cross-section
 64 //    OPTxs = 0      => Dostrovski's parameter     64 //    OPTxs = 0      => Dostrovski's parameterization
 65 //    OPTxs = 1 or 2 => Chatterjee's paramater     65 //    OPTxs = 1 or 2 => Chatterjee's paramaterization
 66 //    OPTxs = 3 or 4 => Kalbach's parameteriza     66 //    OPTxs = 3 or 4 => Kalbach's parameterization
 67 //    useSICB        => use superimposed Coulo     67 //    useSICB        => use superimposed Coulomb Barrier for inverse cross
 68 //                      sections                   68 //                      sections
 69 // Other problem found with G4Fragment definit     69 // Other problem found with G4Fragment definition using Lorentz vector and
 70 // **G4ParticleDefinition**.  This does not al     70 // **G4ParticleDefinition**.  This does not allow A and Z to be defined for the
 71 // fragment for some reason.  Now the fragment     71 // fragment for some reason.  Now the fragment is defined more explicitly:
 72 //    G4Fragment *fragment = new G4Fragment(A,     72 //    G4Fragment *fragment = new G4Fragment(A, Z, lorentzVector);
 73 // to avoid this quirk.  Bug found in SelectSe     73 // to avoid this quirk.  Bug found in SelectSecondariesByDefault: *type is now
 74 // equated to evapType[i] whereas previously i     74 // equated to evapType[i] whereas previously it was equated to fragType[i].
 75 //                                                 75 // 
 76 // 06 August 2015, A. Ribon, CERN              << 
 77 // Migrated std::exp and std::pow to the faste << 
 78 //                                             << 
 79 // 09 June 2017, C. Mancini Terracciano, INFN  << 
 80 // Fixed bug on the initialization of Photon E << 
 81 //                                             << 
 82 // %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%     76 // %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%
 83 //////////////////////////////////////////////     77 ////////////////////////////////////////////////////////////////////////////////
 84 //                                                 78 //
 85 #include <iomanip>                             << 
 86 #include <numeric>                             << 
 87                                                << 
 88 #include "G4WilsonAblationModel.hh"                79 #include "G4WilsonAblationModel.hh"
 89 #include "G4PhysicalConstants.hh"              << 
 90 #include "G4SystemOfUnits.hh"                  << 
 91 #include "Randomize.hh"                            80 #include "Randomize.hh"
 92 #include "G4ParticleTable.hh"                      81 #include "G4ParticleTable.hh"
 93 #include "G4IonTable.hh"                           82 #include "G4IonTable.hh"
 94 #include "G4Alpha.hh"                              83 #include "G4Alpha.hh"
 95 #include "G4He3.hh"                                84 #include "G4He3.hh"
 96 #include "G4Triton.hh"                             85 #include "G4Triton.hh"
 97 #include "G4Deuteron.hh"                           86 #include "G4Deuteron.hh"
 98 #include "G4Proton.hh"                             87 #include "G4Proton.hh"
 99 #include "G4Neutron.hh"                            88 #include "G4Neutron.hh"
100 #include "G4AlphaEvaporationChannel.hh"            89 #include "G4AlphaEvaporationChannel.hh"
101 #include "G4He3EvaporationChannel.hh"              90 #include "G4He3EvaporationChannel.hh"
102 #include "G4TritonEvaporationChannel.hh"           91 #include "G4TritonEvaporationChannel.hh"
103 #include "G4DeuteronEvaporationChannel.hh"         92 #include "G4DeuteronEvaporationChannel.hh"
104 #include "G4ProtonEvaporationChannel.hh"           93 #include "G4ProtonEvaporationChannel.hh"
105 #include "G4NeutronEvaporationChannel.hh"          94 #include "G4NeutronEvaporationChannel.hh"
106 #include "G4PhotonEvaporation.hh"              << 
107 #include "G4LorentzVector.hh"                      95 #include "G4LorentzVector.hh"
108 #include "G4VEvaporationChannel.hh"                96 #include "G4VEvaporationChannel.hh"
109                                                    97 
110 #include "G4Exp.hh"                            <<  98 #include <iomanip>
111 #include "G4Pow.hh"                            <<  99 #include <numeric>
112                                                << 
113 #include "G4PhysicsModelCatalog.hh"            << 
114                                                << 
115 //////////////////////////////////////////////    100 ////////////////////////////////////////////////////////////////////////////////
116 //                                                101 //
117 G4WilsonAblationModel::G4WilsonAblationModel()    102 G4WilsonAblationModel::G4WilsonAblationModel()
118 {                                                 103 {
119 //                                                104 //
120 //                                                105 //
121 // Send message to stdout to advise that the G    106 // Send message to stdout to advise that the G4Abrasion model is being used.
122 //                                                107 //
123   PrintWelcomeMessage();                          108   PrintWelcomeMessage();
124 //                                                109 //
125 //                                                110 //
126 // Set the default verbose level to 0 - no out    111 // Set the default verbose level to 0 - no output.
127 //                                                112 //
128   verboseLevel = 0;                               113   verboseLevel = 0;  
129 //                                                114 //
130 //                                                115 //
131 // Set the binding energy per nucleon .... did    116 // Set the binding energy per nucleon .... did I mention that this is a crude
132 // model for nuclear de-excitation?               117 // model for nuclear de-excitation?
133 //                                                118 //
134   B = 10.0 * MeV;                                 119   B = 10.0 * MeV;
135 //                                                120 //
136 //                                                121 //
137 // It is possuble to switch off secondary part    122 // It is possuble to switch off secondary particle production (other than the
138 // final nuclear fragment).  The default is on    123 // final nuclear fragment).  The default is on.
139 //                                                124 //
140   produceSecondaries = true;                      125   produceSecondaries = true;
141 //                                                126 //
142 //                                                127 //
143 // Now we need to define the decay modes.  We'    128 // Now we need to define the decay modes.  We're using the G4Evaporation model
144 // to help determine the kinematics of the dec    129 // to help determine the kinematics of the decay.
145 //                                                130 //
146   nFragTypes  = 6;                                131   nFragTypes  = 6;
147   fragType[0] = G4Alpha::Alpha();                 132   fragType[0] = G4Alpha::Alpha();
148   fragType[1] = G4He3::He3();                     133   fragType[1] = G4He3::He3();
149   fragType[2] = G4Triton::Triton();               134   fragType[2] = G4Triton::Triton();
150   fragType[3] = G4Deuteron::Deuteron();           135   fragType[3] = G4Deuteron::Deuteron();
151   fragType[4] = G4Proton::Proton();               136   fragType[4] = G4Proton::Proton();
152   fragType[5] = G4Neutron::Neutron();             137   fragType[5] = G4Neutron::Neutron();
153   for(G4int i=0; i<200; ++i) { fSig[i] = 0.0;  << 
154 //                                                138 //
155 //                                                139 //
156 // Set verboseLevel default to no output.         140 // Set verboseLevel default to no output.
157 //                                                141 //
158   verboseLevel = 0;                               142   verboseLevel = 0;
159   theChannelFactory = new G4EvaporationFactory << 143   theChannelFactory = new G4EvaporationFactory();
160   theChannels = theChannelFactory->GetChannel(    144   theChannels = theChannelFactory->GetChannel();
161 //                                                145 //
162 //                                                146 //
163 // Set defaults for evaporation classes.  Thes    147 // Set defaults for evaporation classes.  These can be overridden by user
164 // "set" methods.                                 148 // "set" methods.
165 //                                                149 //
166   OPTxs   = 3;                                    150   OPTxs   = 3;
167   useSICB = false;                                151   useSICB = false;
168   fragmentVector = 0;                          << 
169                                                << 
170   secID = G4PhysicsModelCatalog::GetModelID("m << 
171 }                                                 152 }
172 //////////////////////////////////////////////    153 ////////////////////////////////////////////////////////////////////////////////
173 //                                                154 //
174 G4WilsonAblationModel::~G4WilsonAblationModel(    155 G4WilsonAblationModel::~G4WilsonAblationModel()
175 {}                                             << 156 {
176                                                << 157   if (theChannels != 0) theChannels = 0;
                                                   >> 158   if (theChannelFactory != 0) delete theChannelFactory;
                                                   >> 159 }
177 //////////////////////////////////////////////    160 ////////////////////////////////////////////////////////////////////////////////
178 //                                                161 //
179 G4FragmentVector *G4WilsonAblationModel::Break    162 G4FragmentVector *G4WilsonAblationModel::BreakItUp
180   (const G4Fragment &theNucleus)                  163   (const G4Fragment &theNucleus)
181 {                                                 164 {
182 //                                                165 //
183 //                                                166 //
184 // Initilise the pointer to the G4FragmentVect    167 // Initilise the pointer to the G4FragmentVector used to return the information
185 // about the breakup.                             168 // about the breakup.
186 //                                                169 //
187   fragmentVector = new G4FragmentVector;          170   fragmentVector = new G4FragmentVector;
188   fragmentVector->clear();                        171   fragmentVector->clear();
189 //                                                172 //
190 //                                                173 //
191 // Get the A, Z and excitation of the nucleus.    174 // Get the A, Z and excitation of the nucleus.
192 //                                                175 //
193   G4int A     = theNucleus.GetA_asInt();       << 176   G4int A     = (G4int) theNucleus.GetA();
194   G4int Z     = theNucleus.GetZ_asInt();       << 177   G4int Z     = (G4int) theNucleus.GetZ();
195   G4double ex = theNucleus.GetExcitationEnergy    178   G4double ex = theNucleus.GetExcitationEnergy();
196   if (verboseLevel >= 2)                          179   if (verboseLevel >= 2)
197   {                                               180   {
198     G4cout <<"oooooooooooooooooooooooooooooooo    181     G4cout <<"oooooooooooooooooooooooooooooooooooooooo"
199            <<"oooooooooooooooooooooooooooooooo    182            <<"oooooooooooooooooooooooooooooooooooooooo"
200            <<G4endl;                              183            <<G4endl;
201     G4cout.precision(6);                          184     G4cout.precision(6);
202     G4cout <<"IN G4WilsonAblationModel" <<G4en    185     G4cout <<"IN G4WilsonAblationModel" <<G4endl;
203     G4cout <<"Initial prefragment A=" <<A         186     G4cout <<"Initial prefragment A=" <<A
204            <<", Z=" <<Z                           187            <<", Z=" <<Z
205            <<", excitation energy = " <<ex/MeV    188            <<", excitation energy = " <<ex/MeV <<" MeV"
206            <<G4endl;                              189            <<G4endl; 
207   }                                               190   }
208 //                                                191 //
209 //                                                192 //
210 // Check that there is a nucleus to speak of.     193 // Check that there is a nucleus to speak of.  It's possible there isn't one
211 // or its just a proton or neutron.  In either    194 // or its just a proton or neutron.  In either case, the excitation energy
212 // (from the Lorentz vector) is not used.         195 // (from the Lorentz vector) is not used.
213 //                                                196 //
214   if (A == 0)                                     197   if (A == 0)
215   {                                               198   {
216     if (verboseLevel >= 2)                        199     if (verboseLevel >= 2)
217     {                                             200     {
218       G4cout <<"No nucleus to decay" <<G4endl;    201       G4cout <<"No nucleus to decay" <<G4endl;
219       G4cout <<"oooooooooooooooooooooooooooooo    202       G4cout <<"oooooooooooooooooooooooooooooooooooooooo"
220              <<"oooooooooooooooooooooooooooooo    203              <<"oooooooooooooooooooooooooooooooooooooooo"
221              <<G4endl;                            204              <<G4endl;
222     }                                             205     }
223     return fragmentVector;                        206     return fragmentVector;
224   }                                               207   }
225   else if (A == 1)                                208   else if (A == 1)
226   {                                               209   {
227     G4LorentzVector lorentzVector = theNucleus    210     G4LorentzVector lorentzVector = theNucleus.GetMomentum();
228     lorentzVector.setE(lorentzVector.e()-ex+10    211     lorentzVector.setE(lorentzVector.e()-ex+10.0*eV);
229     if (Z == 0)                                   212     if (Z == 0)
230     {                                             213     {
231       G4Fragment *fragment = new G4Fragment(lo    214       G4Fragment *fragment = new G4Fragment(lorentzVector,G4Neutron::Neutron());
232       if (fragment != nullptr) { fragment->Set << 
233       fragmentVector->push_back(fragment);        215       fragmentVector->push_back(fragment);
234     }                                             216     }
235     else                                          217     else
236     {                                             218     {
237       G4Fragment *fragment = new G4Fragment(lo    219       G4Fragment *fragment = new G4Fragment(lorentzVector,G4Proton::Proton());
238       if (fragment != nullptr) { fragment->Set << 
239       fragmentVector->push_back(fragment);        220       fragmentVector->push_back(fragment);
240     }                                             221     }
241     if (verboseLevel >= 2)                        222     if (verboseLevel >= 2)
242     {                                             223     {
243       G4cout <<"Final fragment is in fact only    224       G4cout <<"Final fragment is in fact only a nucleon) :" <<G4endl;
244       G4cout <<(*fragmentVector)[0] <<G4endl;     225       G4cout <<(*fragmentVector)[0] <<G4endl;
245       G4cout <<"oooooooooooooooooooooooooooooo    226       G4cout <<"oooooooooooooooooooooooooooooooooooooooo"
246              <<"oooooooooooooooooooooooooooooo    227              <<"oooooooooooooooooooooooooooooooooooooooo"
247              <<G4endl;                            228              <<G4endl;
248     }                                             229     }
249     return fragmentVector;                        230     return fragmentVector;
250   }                                               231   }
251 //                                                232 //
252 //                                                233 //
253 // Then the number of nucleons ablated (either    234 // Then the number of nucleons ablated (either as nucleons or light nuclear
254 // fragments) is based on a simple argument fo    235 // fragments) is based on a simple argument for the binding energy per nucleon.
255 //                                                236 //
256   G4int DAabl = (G4int) (ex / B);                 237   G4int DAabl = (G4int) (ex / B);
257   if (DAabl > A) DAabl = A;                       238   if (DAabl > A) DAabl = A;
258 // The following lines are no longer accurate     239 // The following lines are no longer accurate given we now treat the final fragment
259 //  if (verboseLevel >= 2)                        240 //  if (verboseLevel >= 2)
260 //    G4cout <<"Number of nucleons ejected = "    241 //    G4cout <<"Number of nucleons ejected = " <<DAabl <<G4endl;
261                                                   242 
262 //                                                243 //
263 //                                                244 //
264 // Determine the nuclear fragment from the abl    245 // Determine the nuclear fragment from the ablation process by sampling the
265 // Rudstam equation.                              246 // Rudstam equation.
266 //                                                247 //
267   G4int AF = A - DAabl;                           248   G4int AF = A - DAabl;
268   G4int ZF = 0;                                   249   G4int ZF = 0;
269                                                << 
270   if (AF > 0)                                     250   if (AF > 0)
271   {                                               251   {
272     G4Pow* g4calc = G4Pow::GetInstance();      << 
273     G4double AFd = (G4double) AF;                 252     G4double AFd = (G4double) AF;
274     G4double R = 11.8 / g4calc->powZ(AF, 0.45) << 253     G4double R = 11.8 / std::pow(AFd, 0.45);
275     G4int minZ = std::max(1, Z - DAabl);       << 254     G4int minZ = Z - DAabl;
                                                   >> 255     if (minZ <= 0) minZ = 1;
276 //                                                256 //
277 //                                                257 //
278 // Here we define an integral probability dist    258 // Here we define an integral probability distribution based on the Rudstam
279 // equation assuming a constant AF.               259 // equation assuming a constant AF.
280 //                                                260 //    
281     G4int zmax = std::min(199, Z);             << 261     G4double sig[100];
282     G4double sum = 0.0;                           262     G4double sum = 0.0;
283     for (ZF=minZ; ZF<=zmax; ++ZF)              << 263     for (G4int ii=minZ; ii<= Z; ii++)
284     {                                             264     {
285       sum += G4Exp(-R*g4calc->powA(std::abs(ZF << 265       sum   += std::exp(-R*std::pow(std::abs(ii - 0.486*AFd + 3.8E-04*AFd*AFd),1.5));
286       fSig[ZF] = sum;                          << 266       sig[ii] = sum;
287     }                                             267     }
288 //                                                268 //
289 //                                                269 //
290 // Now sample that distribution to determine a    270 // Now sample that distribution to determine a value for ZF.
291 //                                                271 //
292     sum *= G4UniformRand();                    << 272     G4double xi  = G4UniformRand();
293     for (ZF=minZ; ZF<=zmax; ++ZF) {            << 273     G4int iz     = minZ;
294       if(sum <= fSig[ZF]) { break; }           << 274     G4bool found = false;
295     }                                          << 275     while (iz <= Z && !found)
                                                   >> 276     {
                                                   >> 277       found = (xi <= sig[iz]/sum);
                                                   >> 278       if (!found) iz++;
                                                   >> 279     }
                                                   >> 280     if (iz > Z)
                                                   >> 281       ZF = Z;
                                                   >> 282     else
                                                   >> 283       ZF = iz;
296   }                                               284   }
297   G4int DZabl = Z - ZF;                           285   G4int DZabl = Z - ZF;
298 //                                                286 //
299 //                                                287 //
300 // Now determine the nucleons or nuclei which     288 // Now determine the nucleons or nuclei which have bee ablated.  The preference
301 // is for the production of alphas, then other    289 // is for the production of alphas, then other nuclei in order of decreasing
302 // binding energy. The energies assigned to th    290 // binding energy. The energies assigned to the products of the decay are
303 // provisional for the moment (the 10eV is jus    291 // provisional for the moment (the 10eV is just to avoid errors with negative
304 // excitation energies due to rounding).          292 // excitation energies due to rounding).
305 //                                                293 //
306   G4double totalEpost = 0.0;                      294   G4double totalEpost = 0.0;
307   evapType.clear();                               295   evapType.clear();
308   for (G4int ift=0; ift<nFragTypes; ift++)        296   for (G4int ift=0; ift<nFragTypes; ift++)
309   {                                               297   {
310     G4ParticleDefinition *type = fragType[ift]    298     G4ParticleDefinition *type = fragType[ift];
311     G4double n  = std::floor((G4double) DAabl     299     G4double n  = std::floor((G4double) DAabl / type->GetBaryonNumber() + 1.0E-10);
312     G4double n1 = 1.0E+10;                        300     G4double n1 = 1.0E+10;
313     if (fragType[ift]->GetPDGCharge() > 0.0)      301     if (fragType[ift]->GetPDGCharge() > 0.0)
314       n1 = std::floor((G4double) DZabl / type-    302       n1 = std::floor((G4double) DZabl / type->GetPDGCharge() + 1.0E-10);
315     if (n > n1) n = n1;                           303     if (n > n1) n = n1;
316     if (n > 0.0)                                  304     if (n > 0.0)
317     {                                             305     {
318       G4double mass = type->GetPDGMass();         306       G4double mass = type->GetPDGMass();
319       for (G4int j=0; j<(G4int) n; j++)           307       for (G4int j=0; j<(G4int) n; j++)
320       {                                           308       {
321         totalEpost += mass;                       309         totalEpost += mass;
322         evapType.push_back(type);                 310         evapType.push_back(type);
323       }                                           311       }
324       DAabl -= (G4int) (n * type->GetBaryonNum    312       DAabl -= (G4int) (n * type->GetBaryonNumber() + 1.0E-10);
325       DZabl -= (G4int) (n * type->GetPDGCharge    313       DZabl -= (G4int) (n * type->GetPDGCharge() + 1.0E-10);
326     }                                             314     }
327   }                                               315   }
328 //                                                316 //
329 //                                                317 //
330 // Determine the properties of the final nucle    318 // Determine the properties of the final nuclear fragment.  Note that if
331 // the final fragment is predicted to have a n    319 // the final fragment is predicted to have a nucleon number of zero, then
332 // really it's the particle last in the vector    320 // really it's the particle last in the vector evapType which becomes the
333 // final fragment.  Therefore delete this from    321 // final fragment.  Therefore delete this from the vector if this is the
334 // case.                                          322 // case.
335 //                                                323 //
336   G4double massFinalFrag = 0.0;                   324   G4double massFinalFrag = 0.0;
337   if (AF > 0)                                     325   if (AF > 0)
338     massFinalFrag = G4ParticleTable::GetPartic    326     massFinalFrag = G4ParticleTable::GetParticleTable()->GetIonTable()->
339       GetIonMass(ZF,AF);                          327       GetIonMass(ZF,AF);
340   else                                            328   else
341   {                                               329   {
342     G4ParticleDefinition *type = evapType[evap    330     G4ParticleDefinition *type = evapType[evapType.size()-1];
343     AF                         = type->GetBary    331     AF                         = type->GetBaryonNumber();
344     ZF                         = (G4int) (type    332     ZF                         = (G4int) (type->GetPDGCharge() + 1.0E-10);
345     evapType.erase(evapType.end()-1);             333     evapType.erase(evapType.end()-1);
346   }                                               334   }
347   totalEpost   += massFinalFrag;                  335   totalEpost   += massFinalFrag;
348 //                                                336 //
349 //                                                337 //
350 // Provide verbose output on the nuclear fragm    338 // Provide verbose output on the nuclear fragment if requested.
351 //                                                339 //
352   if (verboseLevel >= 2)                          340   if (verboseLevel >= 2)
353   {                                               341   {
354     G4cout <<"Final fragment      A=" <<AF        342     G4cout <<"Final fragment      A=" <<AF
355            <<", Z=" <<ZF                          343            <<", Z=" <<ZF
356            <<G4endl;                              344            <<G4endl;
357     for (G4int ift=0; ift<nFragTypes; ift++)      345     for (G4int ift=0; ift<nFragTypes; ift++)
358     {                                             346     {
359       G4ParticleDefinition *type = fragType[if    347       G4ParticleDefinition *type = fragType[ift];
360       G4long n = std::count(evapType.cbegin(), << 348       G4int n                    = std::count(evapType.begin(),evapType.end(),type);
361       if (n > 0)                                  349       if (n > 0) 
362         G4cout <<"Particle type: " <<std::setw    350         G4cout <<"Particle type: " <<std::setw(10) <<type->GetParticleName()
363                <<", number of particles emitte    351                <<", number of particles emitted = " <<n <<G4endl;
364     }                                             352     }
365   }                                               353   }
366 //                                                354 //
367 // Add the total energy from the fragment.  No    355 // Add the total energy from the fragment.  Note that the fragment is assumed
368 // to be de-excited and does not undergo photo    356 // to be de-excited and does not undergo photo-evaporation .... I did mention
369 // this is a bit of a crude model?                357 // this is a bit of a crude model?
370 //                                                358 //
371   G4double massPreFrag      = theNucleus.GetGr    359   G4double massPreFrag      = theNucleus.GetGroundStateMass();
372   G4double totalEpre        = massPreFrag + ex    360   G4double totalEpre        = massPreFrag + ex;
373   G4double excess           = totalEpre - tota    361   G4double excess           = totalEpre - totalEpost;
374 //  G4Fragment *resultNucleus(theNucleus);        362 //  G4Fragment *resultNucleus(theNucleus);
375   G4Fragment *resultNucleus = new G4Fragment(A    363   G4Fragment *resultNucleus = new G4Fragment(A, Z, theNucleus.GetMomentum());
376   G4ThreeVector boost(0.0,0.0,0.0);               364   G4ThreeVector boost(0.0,0.0,0.0);
377   std::size_t nEvap = 0;                       << 365   G4int nEvap = 0;
378   if (produceSecondaries && evapType.size()>0)    366   if (produceSecondaries && evapType.size()>0)
379   {                                               367   {
380     if (excess > 0.0)                             368     if (excess > 0.0)
381     {                                             369     {
382       SelectSecondariesByEvaporation (resultNu    370       SelectSecondariesByEvaporation (resultNucleus);
383       nEvap = fragmentVector->size();             371       nEvap = fragmentVector->size();
384       boost = resultNucleus->GetMomentum().fin    372       boost = resultNucleus->GetMomentum().findBoostToCM();
385       if (evapType.size() > 0)                    373       if (evapType.size() > 0)
386         SelectSecondariesByDefault (boost);       374         SelectSecondariesByDefault (boost);
387     }                                             375     }
388     else                                          376     else
389       SelectSecondariesByDefault(G4ThreeVector    377       SelectSecondariesByDefault(G4ThreeVector(0.0,0.0,0.0));
390   }                                               378   }
391                                                   379 
392   if (AF > 0)                                     380   if (AF > 0)
393   {                                               381   {
394     G4double mass = G4ParticleTable::GetPartic    382     G4double mass = G4ParticleTable::GetParticleTable()->GetIonTable()->
395       GetIonMass(ZF,AF);                          383       GetIonMass(ZF,AF);
396     G4double e    = mass + 10.0*eV;               384     G4double e    = mass + 10.0*eV;
397     G4double p    = std::sqrt(e*e-mass*mass);     385     G4double p    = std::sqrt(e*e-mass*mass);
398     G4ThreeVector direction(0.0,0.0,1.0);         386     G4ThreeVector direction(0.0,0.0,1.0);
399     G4LorentzVector lorentzVector = G4LorentzV    387     G4LorentzVector lorentzVector = G4LorentzVector(direction*p, e);
400     lorentzVector.boost(-boost);                  388     lorentzVector.boost(-boost);
401     G4Fragment* frag = new G4Fragment(AF, ZF,  << 389     *resultNucleus = G4Fragment(AF, ZF, lorentzVector);
402     if (frag != nullptr) { frag->SetCreatorMod << 390     fragmentVector->push_back(resultNucleus);
403     fragmentVector->push_back(frag);           << 
404   }                                               391   }
405   delete resultNucleus;                        << 
406 //                                                392 //
407 //                                                393 //
408 // Provide verbose output on the ablation prod    394 // Provide verbose output on the ablation products if requested.
409 //                                                395 //
410   if (verboseLevel >= 2)                          396   if (verboseLevel >= 2)
411   {                                               397   {
412     if (nEvap > 0)                                398     if (nEvap > 0)
413     {                                             399     {
414       G4cout <<"----------------------" <<G4en    400       G4cout <<"----------------------" <<G4endl;
415       G4cout <<"Evaporated particles :" <<G4en    401       G4cout <<"Evaporated particles :" <<G4endl;
416       G4cout <<"----------------------" <<G4en    402       G4cout <<"----------------------" <<G4endl;
417     }                                             403     }
418     std::size_t ie = 0;                        << 404     G4int ie = 0;
419     for (auto iter = fragmentVector->cbegin(); << 405     G4FragmentVector::iterator iter;
420               iter != fragmentVector->cend();  << 406     for (iter = fragmentVector->begin(); iter != fragmentVector->end(); iter++)
421     {                                             407     {
422       if (ie == nEvap)                            408       if (ie == nEvap)
423       {                                           409       {
424 //        G4cout <<*iter  <<G4endl;               410 //        G4cout <<*iter  <<G4endl;
425         G4cout <<"----------------------------    411         G4cout <<"---------------------------------" <<G4endl;
426         G4cout <<"Particles from default emiss    412         G4cout <<"Particles from default emission :" <<G4endl;
427         G4cout <<"----------------------------    413         G4cout <<"---------------------------------" <<G4endl;
428       }                                           414       }
429       G4cout <<*iter <<G4endl;                    415       G4cout <<*iter <<G4endl;
430     }                                             416     }
431     G4cout <<"oooooooooooooooooooooooooooooooo    417     G4cout <<"oooooooooooooooooooooooooooooooooooooooo"
432            <<"oooooooooooooooooooooooooooooooo    418            <<"oooooooooooooooooooooooooooooooooooooooo"
433            <<G4endl;                              419            <<G4endl;
434   }                                               420   }
435                                                   421 
436   return fragmentVector;                          422   return fragmentVector;    
437 }                                                 423 }
438 //////////////////////////////////////////////    424 ////////////////////////////////////////////////////////////////////////////////
439 //                                                425 //
440 void G4WilsonAblationModel::SelectSecondariesB    426 void G4WilsonAblationModel::SelectSecondariesByEvaporation
441   (G4Fragment *intermediateNucleus)               427   (G4Fragment *intermediateNucleus)
442 {                                                 428 {
443   G4Fragment theResidualNucleus = *intermediat    429   G4Fragment theResidualNucleus = *intermediateNucleus;
444   G4bool evaporate = true;                        430   G4bool evaporate = true;
445   // Loop checking, 05-Aug-2015, Vladimir Ivan << 
446   while (evaporate && evapType.size() != 0)       431   while (evaporate && evapType.size() != 0)
447   {                                               432   {
448 //                                                433 //
449 //                                                434 //
450 // Here's the cheaky bit.  We're hijacking the    435 // Here's the cheaky bit.  We're hijacking the G4Evaporation model, in order to
451 // more accurately sample to kinematics, but t    436 // more accurately sample to kinematics, but the species of the nuclear
452 // fragments will be the ones of our choosing     437 // fragments will be the ones of our choosing as above.
453 //                                                438 //
454     std::vector <G4VEvaporationChannel*>  theC << 439     std::vector <G4VEvaporationChannel*>  theChannels;
455     theChannels1.clear();                      << 440     theChannels.clear();
456     std::vector <G4VEvaporationChannel*>::iter    441     std::vector <G4VEvaporationChannel*>::iterator i;
457     VectorOfFragmentTypes::iterator iter;         442     VectorOfFragmentTypes::iterator iter;
458     std::vector <VectorOfFragmentTypes::iterat    443     std::vector <VectorOfFragmentTypes::iterator> iters;
459     iters.clear();                                444     iters.clear();
460     iter = std::find(evapType.begin(), evapTyp    445     iter = std::find(evapType.begin(), evapType.end(), G4Alpha::Alpha());
461     if (iter != evapType.end())                   446     if (iter != evapType.end())
462     {                                             447     {
463       theChannels1.push_back(new G4AlphaEvapor << 448       theChannels.push_back(new G4AlphaEvaporationChannel);
464       i = theChannels1.end() - 1;              << 449       i = theChannels.end() - 1;
465       (*i)->SetOPTxs(OPTxs);                      450       (*i)->SetOPTxs(OPTxs);
466       (*i)->UseSICB(useSICB);                     451       (*i)->UseSICB(useSICB);
467 //      (*i)->Initialize(theResidualNucleus);     452 //      (*i)->Initialize(theResidualNucleus);
468       iters.push_back(iter);                      453       iters.push_back(iter);
469     }                                             454     }
470     iter = std::find(evapType.begin(), evapTyp    455     iter = std::find(evapType.begin(), evapType.end(), G4He3::He3());
471     if (iter != evapType.end())                   456     if (iter != evapType.end())
472     {                                             457     {
473       theChannels1.push_back(new G4He3Evaporat << 458       theChannels.push_back(new G4He3EvaporationChannel);
474       i = theChannels1.end() - 1;              << 459       i = theChannels.end() - 1;
475       (*i)->SetOPTxs(OPTxs);                      460       (*i)->SetOPTxs(OPTxs);
476       (*i)->UseSICB(useSICB);                     461       (*i)->UseSICB(useSICB);
477 //      (*i)->Initialize(theResidualNucleus);     462 //      (*i)->Initialize(theResidualNucleus);
478       iters.push_back(iter);                      463       iters.push_back(iter);
479     }                                             464     }
480     iter = std::find(evapType.begin(), evapTyp    465     iter = std::find(evapType.begin(), evapType.end(), G4Triton::Triton());
481     if (iter != evapType.end())                   466     if (iter != evapType.end())
482     {                                             467     {
483       theChannels1.push_back(new G4TritonEvapo << 468       theChannels.push_back(new G4TritonEvaporationChannel);
484       i = theChannels1.end() - 1;              << 469       i = theChannels.end() - 1;
485       (*i)->SetOPTxs(OPTxs);                      470       (*i)->SetOPTxs(OPTxs);
486       (*i)->UseSICB(useSICB);                     471       (*i)->UseSICB(useSICB);
487 //      (*i)->Initialize(theResidualNucleus);     472 //      (*i)->Initialize(theResidualNucleus);
488       iters.push_back(iter);                      473       iters.push_back(iter);
489     }                                             474     }
490     iter = std::find(evapType.begin(), evapTyp    475     iter = std::find(evapType.begin(), evapType.end(), G4Deuteron::Deuteron());
491     if (iter != evapType.end())                   476     if (iter != evapType.end())
492     {                                             477     {
493       theChannels1.push_back(new G4DeuteronEva << 478       theChannels.push_back(new G4DeuteronEvaporationChannel);
494       i = theChannels1.end() - 1;              << 479       i = theChannels.end() - 1;
495       (*i)->SetOPTxs(OPTxs);                      480       (*i)->SetOPTxs(OPTxs);
496       (*i)->UseSICB(useSICB);                     481       (*i)->UseSICB(useSICB);
497 //      (*i)->Initialize(theResidualNucleus);     482 //      (*i)->Initialize(theResidualNucleus);
498       iters.push_back(iter);                      483       iters.push_back(iter);
499     }                                             484     }
500     iter = std::find(evapType.begin(), evapTyp    485     iter = std::find(evapType.begin(), evapType.end(), G4Proton::Proton());
501     if (iter != evapType.end())                   486     if (iter != evapType.end())
502     {                                             487     {
503       theChannels1.push_back(new G4ProtonEvapo << 488       theChannels.push_back(new G4ProtonEvaporationChannel);
504       i = theChannels1.end() - 1;              << 489       i = theChannels.end() - 1;
505       (*i)->SetOPTxs(OPTxs);                      490       (*i)->SetOPTxs(OPTxs);
506       (*i)->UseSICB(useSICB);                     491       (*i)->UseSICB(useSICB);
507 //      (*i)->Initialize(theResidualNucleus);     492 //      (*i)->Initialize(theResidualNucleus);
508       iters.push_back(iter);                      493       iters.push_back(iter);
509     }                                             494     }
510     iter = std::find(evapType.begin(), evapTyp    495     iter = std::find(evapType.begin(), evapType.end(), G4Neutron::Neutron());
511     if (iter != evapType.end())                   496     if (iter != evapType.end())
512     {                                             497     {
513       theChannels1.push_back(new G4NeutronEvap << 498       theChannels.push_back(new G4NeutronEvaporationChannel);
514       i = theChannels1.end() - 1;              << 499       i = theChannels.end() - 1;
515       (*i)->SetOPTxs(OPTxs);                      500       (*i)->SetOPTxs(OPTxs);
516       (*i)->UseSICB(useSICB);                     501       (*i)->UseSICB(useSICB);
517 //      (*i)->Initialize(theResidualNucleus);     502 //      (*i)->Initialize(theResidualNucleus);
518       iters.push_back(iter);                      503       iters.push_back(iter);
519     }                                             504     }
520     std::size_t nChannels = theChannels1.size( << 505     G4int nChannels = theChannels.size();
521                                                   506 
522     G4double totalProb = 0.0;                  << 507     std::vector<G4VEvaporationChannel*>::iterator iterEv;
523     G4int ich = 0;                             << 508     for (iterEv=theChannels.begin(); iterEv!=theChannels.end(); iterEv++)
524     G4double probEvapType[6] = {0.0};          << 509       (*iterEv)->Initialize(*intermediateNucleus);
525     for (auto iterEv=theChannels1.cbegin();    << 510     G4double totalProb = std::accumulate(theChannels.begin(),
526               iterEv!=theChannels1.cend(); ++i << 511       theChannels.end(), 0.0, SumProbabilities());
527       totalProb += (*iterEv)->GetEmissionProba << 512     if (totalProb > 0.0)
528       probEvapType[ich] = totalProb;           << 513     {
529       ++ich;                                   << 
530     }                                          << 
531     if (totalProb > 0.0) {                     << 
532 //                                                514 //
533 //                                                515 //
534 // The emission probability for at least one o    516 // The emission probability for at least one of the evaporation channels is
535 // positive, therefore work out which one shou    517 // positive, therefore work out which one should be selected and decay
536 // the nucleus.                                   518 // the nucleus.
537 //                                                519 //
538       G4double xi = totalProb*G4UniformRand(); << 520       G4double totalProb1      = 0.0;
539       std::size_t ii = 0;                      << 521       G4double probEvapType[6] = {0.0};
540       for (ii=0; ii<nChannels; ++ii)           << 522       for (G4int ich=0; ich<nChannels; ich++)
541       {                                        << 
542         if (xi < probEvapType[ii]) { break; }  << 
543       }                                        << 
544       if (ii >= nChannels) { ii = nChannels -  << 
545       G4FragmentVector *evaporationResult = th << 
546         BreakUpFragment(intermediateNucleus);  << 
547       if ((*evaporationResult)[0] != nullptr)  << 
548       {                                           523       {
549         (*evaporationResult)[0]->SetCreatorMod << 524         totalProb1      += theChannels[ich]->GetEmissionProbability();
                                                   >> 525         probEvapType[ich]  = totalProb1 / totalProb;
550       }                                           526       }
                                                   >> 527       G4double xi = G4UniformRand();
                                                   >> 528       G4int i     = 0;
                                                   >> 529       for (i=0; i<nChannels; i++)
                                                   >> 530         if (xi < probEvapType[i]) break;
                                                   >> 531       if (i > nChannels) i = nChannels - 1;
                                                   >> 532       G4FragmentVector *evaporationResult = theChannels[i]->
                                                   >> 533         BreakUp(*intermediateNucleus);
551       fragmentVector->push_back((*evaporationR    534       fragmentVector->push_back((*evaporationResult)[0]);
552       intermediateNucleus = (*evaporationResul << 535       *intermediateNucleus = *(*evaporationResult)[1];
                                                   >> 536       delete evaporationResult->back();
553       delete evaporationResult;                   537       delete evaporationResult;
                                                   >> 538       evapType.erase(iters[i]);
554     }                                             539     }
555     else                                          540     else
556     {                                             541     {
557 //                                                542 //
558 //                                                543 //
559 // Probability for further evaporation is nil     544 // Probability for further evaporation is nil so have to escape from this
560 // routine and set the energies of the seconda    545 // routine and set the energies of the secondaries to 10eV.
561 //                                                546 //
562       evaporate = false;                          547       evaporate = false;
563     }                                             548     }
564   }                                               549   }
565                                                   550   
566   return;                                         551   return;
567 }                                                 552 }
568 //////////////////////////////////////////////    553 ////////////////////////////////////////////////////////////////////////////////
569 //                                                554 //
570 void G4WilsonAblationModel::SelectSecondariesB    555 void G4WilsonAblationModel::SelectSecondariesByDefault (G4ThreeVector boost)
571 {                                                 556 {
572   for (std::size_t i=0; i<evapType.size(); ++i << 557   for (unsigned i=0; i<evapType.size(); i++)
573   {                                               558   {
574     G4ParticleDefinition *type = evapType[i];     559     G4ParticleDefinition *type = evapType[i];
575     G4double mass              = type->GetPDGM    560     G4double mass              = type->GetPDGMass();
576     G4double e                 = mass + 10.0*e    561     G4double e                 = mass + 10.0*eV;
577     G4double p                 = std::sqrt(e*e    562     G4double p                 = std::sqrt(e*e-mass*mass);
578     G4double costheta          = 2.0*G4Uniform    563     G4double costheta          = 2.0*G4UniformRand() - 1.0;
579     G4double sintheta          = std::sqrt((1.    564     G4double sintheta          = std::sqrt((1.0 - costheta)*(1.0 + costheta));
580     G4double phi               = twopi * G4Uni    565     G4double phi               = twopi * G4UniformRand() * rad;
581     G4ThreeVector direction(sintheta*std::cos(    566     G4ThreeVector direction(sintheta*std::cos(phi),sintheta*std::sin(phi),costheta);
582     G4LorentzVector lorentzVector = G4LorentzV    567     G4LorentzVector lorentzVector = G4LorentzVector(direction*p, e);
583     lorentzVector.boost(-boost);                  568     lorentzVector.boost(-boost);
584 // Possibility that the following line is not     569 // Possibility that the following line is not correctly carrying over A and Z
585 // from particle definition.  Force values.  P    570 // from particle definition.  Force values.  PRT 03/12/2009.
586 //    G4Fragment *fragment          =             571 //    G4Fragment *fragment          = 
587 //      new G4Fragment(lorentzVector, type);      572 //      new G4Fragment(lorentzVector, type);
588     G4int A = type->GetBaryonNumber();            573     G4int A = type->GetBaryonNumber();
589     G4int Z = (G4int) (type->GetPDGCharge() +     574     G4int Z = (G4int) (type->GetPDGCharge() + 1.0E-10);
590     G4Fragment *fragment          =               575     G4Fragment *fragment          = 
591       new G4Fragment(A, Z, lorentzVector);        576       new G4Fragment(A, Z, lorentzVector);
592     if (fragment != nullptr) { fragment->SetCr << 577 
593     fragmentVector->push_back(fragment);          578     fragmentVector->push_back(fragment);
594   }                                               579   }
595 }                                                 580 }
596 //////////////////////////////////////////////    581 ////////////////////////////////////////////////////////////////////////////////
597 //                                                582 //
598 void G4WilsonAblationModel::PrintWelcomeMessag    583 void G4WilsonAblationModel::PrintWelcomeMessage ()
599 {                                                 584 {
600   G4cout <<G4endl;                                585   G4cout <<G4endl;
601   G4cout <<" *********************************    586   G4cout <<" *****************************************************************"
602          <<G4endl;                                587          <<G4endl;
603   G4cout <<" Nuclear ablation model for nuclea    588   G4cout <<" Nuclear ablation model for nuclear-nuclear interactions activated"
604          <<G4endl;                                589          <<G4endl;
605   G4cout <<" (Written by QinetiQ Ltd for the E    590   G4cout <<" (Written by QinetiQ Ltd for the European Space Agency)"
606          <<G4endl;                             << 
607   G4cout <<" !!! WARNING: This model is not we << 
608          <<G4endl;                                591          <<G4endl;
609   G4cout <<" *********************************    592   G4cout <<" *****************************************************************"
610          <<G4endl;                                593          <<G4endl;
611   G4cout << G4endl;                               594   G4cout << G4endl;
612                                                   595 
613   return;                                         596   return;
614 }                                                 597 }
615 //////////////////////////////////////////////    598 ////////////////////////////////////////////////////////////////////////////////
616 //                                                599 //
617                                                   600