Geant4 9.6.0
Toolkit for the simulation of the passage of particles through matter
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G4LEXiZeroInelastic.cc
Go to the documentation of this file.
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25//
26// $Id$
27//
28// Hadronic Process: XiZero Inelastic Process
29// J.L. Chuma, TRIUMF, 20-Feb-1997
30// Modified by J.L.Chuma 30-Apr-97: added originalTarget for CalculateMomenta
31
34#include "G4SystemOfUnits.hh"
35#include "Randomize.hh"
36
37void G4LEXiZeroInelastic::ModelDescription(std::ostream& outFile) const
38{
39 outFile << "G4LEXiZeroInelastic is one of the Low Energy Parameterized\n"
40 << "(LEP) models used to implement inelastic X0 scattering\n"
41 << "from nuclei. It is a re-engineered version of the GHEISHA\n"
42 << "code of H. Fesefeldt. It divides the initial collision\n"
43 << "products into backward- and forward-going clusters which are\n"
44 << "then decayed into final state hadrons. The model does not\n"
45 << "conserve energy on an event-by-event basis. It may be\n"
46 << "applied to X0 with initial energies between 0 and 25\n"
47 << "GeV.\n";
48}
49
50
53 G4Nucleus& targetNucleus)
54{
55 const G4HadProjectile *originalIncident = &aTrack;
56 if (originalIncident->GetKineticEnergy()<= 0.1*MeV) {
60 return &theParticleChange;
61 }
62
63 // create the target particle
64 G4DynamicParticle* originalTarget = targetNucleus.ReturnTargetParticle();
65
66 if (verboseLevel > 1) {
67 const G4Material *targetMaterial = aTrack.GetMaterial();
68 G4cout << "G4LEXiZeroInelastic::ApplyYourself called" << G4endl;
69 G4cout << "kinetic energy = " << originalIncident->GetKineticEnergy()/MeV << "MeV, ";
70 G4cout << "target material = " << targetMaterial->GetName() << ", ";
71 G4cout << "target particle = " << originalTarget->GetDefinition()->GetParticleName()
72 << G4endl;
73 }
74
75 // Fermi motion and evaporation
76 // As of Geant3, the Fermi energy calculation had not been done
77 G4double ek = originalIncident->GetKineticEnergy()/MeV;
78 G4double amas = originalIncident->GetDefinition()->GetPDGMass()/MeV;
79 G4ReactionProduct modifiedOriginal;
80 modifiedOriginal = *originalIncident;
81
82 G4double tkin = targetNucleus.Cinema(ek);
83 ek += tkin;
84 modifiedOriginal.SetKineticEnergy(ek*MeV);
85 G4double et = ek + amas;
86 G4double p = std::sqrt(std::abs((et-amas)*(et+amas)) );
87 G4double pp = modifiedOriginal.GetMomentum().mag()/MeV;
88 if (pp > 0.0) {
89 G4ThreeVector momentum = modifiedOriginal.GetMomentum();
90 modifiedOriginal.SetMomentum( momentum * (p/pp) );
91 }
92
93 // calculate black track energies
94 tkin = targetNucleus.EvaporationEffects(ek);
95 ek -= tkin;
96 modifiedOriginal.SetKineticEnergy(ek*MeV);
97 et = ek + amas;
98 p = std::sqrt( std::abs((et-amas)*(et+amas)) );
99 pp = modifiedOriginal.GetMomentum().mag()/MeV;
100 if (pp > 0.0) {
101 G4ThreeVector momentum = modifiedOriginal.GetMomentum();
102 modifiedOriginal.SetMomentum( momentum * (p/pp) );
103 }
104 G4ReactionProduct currentParticle = modifiedOriginal;
105 G4ReactionProduct targetParticle;
106 targetParticle = *originalTarget;
107 currentParticle.SetSide(1); // incident always goes in forward hemisphere
108 targetParticle.SetSide(-1); // target always goes in backward hemisphere
109 G4bool incidentHasChanged = false;
110 G4bool targetHasChanged = false;
111 G4bool quasiElastic = false;
112 G4FastVector<G4ReactionProduct,GHADLISTSIZE> vec; // vec will contain the secondary particles
113 G4int vecLen = 0;
114 vec.Initialize(0);
115
116 const G4double cutOff = 0.1;
117 if (currentParticle.GetKineticEnergy()/MeV > cutOff)
118 Cascade(vec, vecLen, originalIncident, currentParticle, targetParticle,
119 incidentHasChanged, targetHasChanged, quasiElastic);
120
121 CalculateMomenta(vec, vecLen, originalIncident, originalTarget,
122 modifiedOriginal, targetNucleus, currentParticle,
123 targetParticle, incidentHasChanged, targetHasChanged,
124 quasiElastic);
125
126 SetUpChange(vec, vecLen, currentParticle, targetParticle, incidentHasChanged);
127
128 if (isotopeProduction) DoIsotopeCounting(originalIncident, targetNucleus);
129
130 delete originalTarget;
131 return &theParticleChange;
132}
133
134
135void G4LEXiZeroInelastic::Cascade(
137 G4int& vecLen,
138 const G4HadProjectile *originalIncident,
139 G4ReactionProduct &currentParticle,
140 G4ReactionProduct &targetParticle,
141 G4bool &incidentHasChanged,
142 G4bool &targetHasChanged,
143 G4bool &quasiElastic)
144{
145 // derived from original FORTRAN code CASX0 by H. Fesefeldt (20-Jan-1989)
146 //
147 // XiZero undergoes interaction with nucleon within a nucleus. Check if it is
148 // energetically possible to produce pions/kaons. In not, assume nuclear excitation
149 // occurs and input particle is degraded in energy. No other particles are produced.
150 // If reaction is possible, find the correct number of pions/protons/neutrons
151 // produced using an interpolation to multiplicity data. Replace some pions or
152 // protons/neutrons by kaons or strange baryons according to the average
153 // multiplicity per inelastic reaction.
154 //
155 const G4double mOriginal = originalIncident->GetDefinition()->GetPDGMass()/MeV;
156 const G4double etOriginal = originalIncident->GetTotalEnergy()/MeV;
157 const G4double targetMass = targetParticle.GetMass()/MeV;
158 G4double centerofmassEnergy = std::sqrt( mOriginal*mOriginal +
159 targetMass*targetMass +
160 2.0*targetMass*etOriginal );
161 G4double availableEnergy = centerofmassEnergy-(targetMass+mOriginal);
162 if( availableEnergy <= G4PionPlus::PionPlus()->GetPDGMass()/MeV )
163 {
164 quasiElastic = true;
165 return;
166 }
167 static G4bool first = true;
168 const G4int numMul = 1200;
169 const G4int numSec = 60;
170 static G4double protmul[numMul], protnorm[numSec]; // proton constants
171 static G4double neutmul[numMul], neutnorm[numSec]; // neutron constants
172 // npos = number of pi+, nneg = number of pi-, nzero = number of pi0
173 G4int counter, nt=0, npos=0, nneg=0, nzero=0;
174 G4double test;
175 const G4double c = 1.25;
176 const G4double b[] = { 0.7, 0.7 };
177 if( first ) // compute normalization constants, this will only be Done once
178 {
179 first = false;
180 G4int i;
181 for( i=0; i<numMul; ++i )protmul[i] = 0.0;
182 for( i=0; i<numSec; ++i )protnorm[i] = 0.0;
183 counter = -1;
184 for( npos=0; npos<(numSec/3); ++npos )
185 {
186 for( nneg=std::max(0,npos-2); nneg<=(npos+1); ++nneg )
187 {
188 for( nzero=0; nzero<numSec/3; ++nzero )
189 {
190 if( ++counter < numMul )
191 {
192 nt = npos+nneg+nzero;
193 if( nt>0 && nt<=numSec )
194 {
195 protmul[counter] = Pmltpc(npos,nneg,nzero,nt,b[0],c);
196 protnorm[nt-1] += protmul[counter];
197 }
198 }
199 }
200 }
201 }
202 for( i=0; i<numMul; ++i )neutmul[i] = 0.0;
203 for( i=0; i<numSec; ++i )neutnorm[i] = 0.0;
204 counter = -1;
205 for( npos=0; npos<numSec/3; ++npos )
206 {
207 for( nneg=std::max(0,npos-1); nneg<=(npos+2); ++nneg )
208 {
209 for( nzero=0; nzero<numSec/3; ++nzero )
210 {
211 if( ++counter < numMul )
212 {
213 nt = npos+nneg+nzero;
214 if( nt>0 && nt<=numSec )
215 {
216 neutmul[counter] = Pmltpc(npos,nneg,nzero,nt,b[1],c);
217 neutnorm[nt-1] += neutmul[counter];
218 }
219 }
220 }
221 }
222 }
223 for( i=0; i<numSec; ++i )
224 {
225 if( protnorm[i] > 0.0 )protnorm[i] = 1.0/protnorm[i];
226 if( neutnorm[i] > 0.0 )neutnorm[i] = 1.0/neutnorm[i];
227 }
228 } // end of initialization
229
230 const G4double expxu = 82.; // upper bound for arg. of exp
231 const G4double expxl = -expxu; // lower bound for arg. of exp
237
238 // energetically possible to produce pion(s) --> inelastic scattering
239 G4double n, anpn;
240 GetNormalizationConstant(availableEnergy, n, anpn);
241 G4double ran = G4UniformRand();
242 G4double dum, excs = 0.0;
243 if( targetParticle.GetDefinition() == aProton )
244 {
245 counter = -1;
246 for( npos=0; npos<numSec/3 && ran>=excs; ++npos )
247 {
248 for( nneg=std::max(0,npos-2); nneg<=(npos+1) && ran>=excs; ++nneg )
249 {
250 for( nzero=0; nzero<numSec/3 && ran>=excs; ++nzero )
251 {
252 if( ++counter < numMul )
253 {
254 nt = npos+nneg+nzero;
255 if( nt>0 && nt<=numSec )
256 {
257 test = std::exp( std::min( expxu, std::max( expxl, -(pi/4.0)*(nt*nt)/(n*n) ) ) );
258 dum = (pi/anpn)*nt*protmul[counter]*protnorm[nt-1]/(2.0*n*n);
259 if( std::fabs(dum) < 1.0 )
260 {
261 if( test >= 1.0e-10 )excs += dum*test;
262 }
263 else
264 excs += dum*test;
265 }
266 }
267 }
268 }
269 }
270 if( ran >= excs ) // 3 previous loops continued to the end
271 {
272 quasiElastic = true;
273 return;
274 }
275 npos--; nneg--; nzero--;
276 //
277 // number of secondary mesons determined by kno distribution
278 // check for total charge of final state mesons to determine
279 // the kind of baryons to be produced, taking into account
280 // charge and strangeness conservation
281 //
282 if( npos < nneg+1 )
283 {
284 if( npos != nneg ) // charge mismatch
285 {
286 currentParticle.SetDefinitionAndUpdateE( aSigmaPlus );
287 incidentHasChanged = true;
288 //
289 // correct the strangeness by replacing a pi- by a kaon-
290 //
291 vec.Initialize( 1 );
293 p->SetDefinition( aKaonMinus );
294 (G4UniformRand() < 0.5) ? p->SetSide( -1 ) : p->SetSide( 1 );
295 vec.SetElement( vecLen++, p );
296 --nneg;
297 }
298 }
299 else if( npos == nneg+1 )
300 {
301 if( G4UniformRand() < 0.5 )
302 {
303 targetParticle.SetDefinitionAndUpdateE( aNeutron );
304 targetHasChanged = true;
305 }
306 else
307 {
308 currentParticle.SetDefinitionAndUpdateE( aXiMinus );
309 incidentHasChanged = true;
310 }
311 }
312 else
313 {
314 currentParticle.SetDefinitionAndUpdateE( aXiMinus );
315 incidentHasChanged = true;
316 targetParticle.SetDefinitionAndUpdateE( aNeutron );
317 targetHasChanged = true;
318 }
319 }
320 else // target must be a neutron
321 {
322 counter = -1;
323 for( npos=0; npos<numSec/3 && ran>=excs; ++npos )
324 {
325 for( nneg=std::max(0,npos-1); nneg<=(npos+2) && ran>=excs; ++nneg )
326 {
327 for( nzero=0; nzero<numSec/3 && ran>=excs; ++nzero )
328 {
329 if( ++counter < numMul )
330 {
331 nt = npos+nneg+nzero;
332 if( nt>0 && nt<=numSec )
333 {
334 test = std::exp( std::min( expxu, std::max( expxl, -(pi/4.0)*(nt*nt)/(n*n) ) ) );
335 dum = (pi/anpn)*nt*neutmul[counter]*neutnorm[nt-1]/(2.0*n*n);
336 if( std::fabs(dum) < 1.0 )
337 {
338 if( test >= 1.0e-10 )excs += dum*test;
339 }
340 else
341 excs += dum*test;
342 }
343 }
344 }
345 }
346 }
347 if( ran >= excs ) // 3 previous loops continued to the end
348 {
349 quasiElastic = true;
350 return;
351 }
352 npos--; nneg--; nzero--;
353 if( npos < nneg )
354 {
355 if( npos+1 == nneg )
356 {
357 targetParticle.SetDefinitionAndUpdateE( aProton );
358 targetHasChanged = true;
359 }
360 else // charge mismatch
361 {
362 currentParticle.SetDefinitionAndUpdateE( aSigmaPlus );
363 incidentHasChanged = true;
364 targetParticle.SetDefinitionAndUpdateE( aProton );
365 targetHasChanged = true;
366 //
367 // correct the strangeness by replacing a pi- by a kaon-
368 //
369 vec.Initialize( 1 );
371 p->SetDefinition( aKaonMinus );
372 (G4UniformRand() < 0.5) ? p->SetSide( -1 ) : p->SetSide( 1 );
373 vec.SetElement( vecLen++, p );
374 --nneg;
375 }
376 }
377 else if( npos == nneg )
378 {
379 if( G4UniformRand() >= 0.5 )
380 {
381 currentParticle.SetDefinitionAndUpdateE( aXiMinus );
382 incidentHasChanged = true;
383 targetParticle.SetDefinitionAndUpdateE( aProton );
384 targetHasChanged = true;
385 }
386 }
387 else
388 {
389 currentParticle.SetDefinitionAndUpdateE( aXiMinus );
390 incidentHasChanged = true;
391 }
392 }
393 SetUpPions(npos, nneg, nzero, vec, vecLen);
394 return;
395}
396
397 /* end of file */
398
@ isAlive
double G4double
Definition: G4Types.hh:64
int G4int
Definition: G4Types.hh:66
bool G4bool
Definition: G4Types.hh:67
#define G4endl
Definition: G4ios.hh:52
G4DLLIMPORT std::ostream G4cout
#define G4UniformRand()
Definition: Randomize.hh:53
Hep3Vector unit() const
double mag() const
Hep3Vector vect() const
G4ParticleDefinition * GetDefinition() const
void SetElement(G4int anIndex, Type *anElement)
Definition: G4FastVector.hh:76
void Initialize(G4int items)
Definition: G4FastVector.hh:63
void SetStatusChange(G4HadFinalStateStatus aS)
void SetEnergyChange(G4double anEnergy)
void SetMomentumChange(const G4ThreeVector &aV)
const G4Material * GetMaterial() const
const G4ParticleDefinition * GetDefinition() const
G4double GetKineticEnergy() const
const G4LorentzVector & Get4Momentum() const
G4double GetTotalEnergy() const
G4double Pmltpc(G4int np, G4int nm, G4int nz, G4int n, G4double b, G4double c)
void GetNormalizationConstant(const G4double availableEnergy, G4double &n, G4double &anpn)
void SetUpPions(const G4int np, const G4int nm, const G4int nz, G4FastVector< G4ReactionProduct, GHADLISTSIZE > &vec, G4int &vecLen)
void CalculateMomenta(G4FastVector< G4ReactionProduct, GHADLISTSIZE > &vec, G4int &vecLen, const G4HadProjectile *originalIncident, const G4DynamicParticle *originalTarget, G4ReactionProduct &modifiedOriginal, G4Nucleus &targetNucleus, G4ReactionProduct &currentParticle, G4ReactionProduct &targetParticle, G4bool &incidentHasChanged, G4bool &targetHasChanged, G4bool quasiElastic)
void DoIsotopeCounting(const G4HadProjectile *theProjectile, const G4Nucleus &aNucleus)
void SetUpChange(G4FastVector< G4ReactionProduct, GHADLISTSIZE > &vec, G4int &vecLen, G4ReactionProduct &currentParticle, G4ReactionProduct &targetParticle, G4bool &incidentHasChanged)
static G4KaonMinus * KaonMinus()
Definition: G4KaonMinus.cc:113
G4HadFinalState * ApplyYourself(const G4HadProjectile &aTrack, G4Nucleus &targetNucleus)
virtual void ModelDescription(std::ostream &outFile) const
const G4String & GetName() const
Definition: G4Material.hh:177
static G4Neutron * Neutron()
Definition: G4Neutron.cc:104
G4double EvaporationEffects(G4double kineticEnergy)
Definition: G4Nucleus.cc:264
G4double Cinema(G4double kineticEnergy)
Definition: G4Nucleus.cc:368
G4DynamicParticle * ReturnTargetParticle() const
Definition: G4Nucleus.cc:227
const G4String & GetParticleName() const
static G4PionPlus * PionPlus()
Definition: G4PionPlus.cc:98
static G4Proton * Proton()
Definition: G4Proton.cc:93
void SetMomentum(const G4double x, const G4double y, const G4double z)
G4double GetKineticEnergy() const
G4ThreeVector GetMomentum() const
void SetSide(const G4int sid)
void SetDefinitionAndUpdateE(G4ParticleDefinition *aParticleDefinition)
void SetKineticEnergy(const G4double en)
G4ParticleDefinition * GetDefinition() const
void SetDefinition(G4ParticleDefinition *aParticleDefinition)
G4double GetMass() const
static G4SigmaPlus * SigmaPlus()
Definition: G4SigmaPlus.cc:108
static G4XiMinus * XiMinus()
Definition: G4XiMinus.cc:106
const G4double pi