Geant4 9.6.0
Toolkit for the simulation of the passage of particles through matter
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G4NeutronHPInelasticData.cc
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25//
26// neutron_hp -- source file
27// J.P. Wellisch, Nov-1996
28// A prototype of the low energy neutron transport model.
29//
30// 070523 add neglecting doppler broadening on the fly. T. Koi
31// 070613 fix memory leaking by T. Koi
32// 071002 enable cross section dump by T. Koi
33// 080428 change checking point of "neglecting doppler broadening" flag
34// from GetCrossSection to BuildPhysicsTable by T. Koi
35// 081024 G4NucleiPropertiesTable:: to G4NucleiProperties::
36//
39#include "G4SystemOfUnits.hh"
40#include "G4Neutron.hh"
41#include "G4ElementTable.hh"
42#include "G4NeutronHPData.hh"
43
45:G4VCrossSectionDataSet("NeutronHPInelasticXS")
46{
47
48 SetMinKinEnergy( 0*MeV );
49 SetMaxKinEnergy( 20*MeV );
50
51 ke_cache = 0.0;
52 xs_cache = 0.0;
53 element_cache = NULL;
54 material_cache = NULL;
55
56 onFlightDB = true;
57 theCrossSections = 0;
59}
60
62{
63 if ( theCrossSections != 0 ) theCrossSections->clearAndDestroy();
64 delete theCrossSections;
65}
66
68 G4int /*Z*/ , G4int /*A*/ ,
69 const G4Element* /*elm*/ ,
70 const G4Material* /*mat*/ )
71{
72 G4double eKin = dp->GetKineticEnergy();
73 if ( eKin > GetMaxKinEnergy()
74 || eKin < GetMinKinEnergy()
75 || dp->GetDefinition() != G4Neutron::Neutron() ) return false;
76
77 return true;
78}
79
81 G4int /*Z*/ , G4int /*A*/ ,
82 const G4Isotope* /*iso*/ ,
83 const G4Element* element ,
84 const G4Material* material )
85{
86 if ( dp->GetKineticEnergy() == ke_cache && element == element_cache && material == material_cache ) return xs_cache;
87
88 ke_cache = dp->GetKineticEnergy();
89 element_cache = element;
90 material_cache = material;
91 G4double xs = GetCrossSection( dp , element , material->GetTemperature() );
92 xs_cache = xs;
93 return xs;
94 //return GetCrossSection( dp , element , material->GetTemperature() );
95}
96
97/*
98G4bool G4NeutronHPInelasticData::IsApplicable(const G4DynamicParticle*aP, const G4Element*)
99{
100 G4bool result = true;
101 G4double eKin = aP->GetKineticEnergy();
102 if(eKin>20*MeV||aP->GetDefinition()!=G4Neutron::Neutron()) result = false;
103 return result;
104}
105*/
106
108{
109 if(&aP!=G4Neutron::Neutron())
110 throw G4HadronicException(__FILE__, __LINE__, "Attempt to use NeutronHP data for particles other than neutrons!!!");
111
112//080428
113 if ( getenv( "G4NEUTRONHP_NEGLECT_DOPPLER" ) )
114 {
115 G4cout << "Find environment variable of \"G4NEUTRONHP_NEGLECT_DOPPLER\"." << G4endl;
116 G4cout << "On the fly Doppler broadening will be neglect in the cross section calculation of inelastic scattering of neutrons (<20MeV)." << G4endl;
117 onFlightDB = false;
118 }
119
120 size_t numberOfElements = G4Element::GetNumberOfElements();
121// theCrossSections = new G4PhysicsTable( numberOfElements );
122// TKDB
123 //if ( theCrossSections == 0 )
124 //{ theCrossSections = new G4PhysicsTable( numberOfElements ); }
125 if ( theCrossSections == NULL )
126 theCrossSections = new G4PhysicsTable( numberOfElements );
127 else
128 theCrossSections->clearAndDestroy();
129
130 // make a PhysicsVector for each element
131
132 static const G4ElementTable *theElementTable = G4Element::GetElementTable();
133 for( size_t i=0; i<numberOfElements; ++i )
134 {
136 Instance()->MakePhysicsVector((*theElementTable)[i], this);
137 theCrossSections->push_back(physVec);
138 }
139}
140
142{
143 if(&aP!=G4Neutron::Neutron())
144 throw G4HadronicException(__FILE__, __LINE__, "Attempt to use NeutronHP data for particles other than neutrons!!!");
145
146//
147// Dump element based cross section
148// range 10e-5 eV to 20 MeV
149// 10 point per decade
150// in barn
151//
152
153 G4cout << G4endl;
154 G4cout << G4endl;
155 G4cout << "Inelastic Cross Section of Neutron HP"<< G4endl;
156 G4cout << "(Pointwise cross-section at 0 Kelvin.)" << G4endl;
157 G4cout << G4endl;
158 G4cout << "Name of Element" << G4endl;
159 G4cout << "Energy[eV] XS[barn]" << G4endl;
160 G4cout << G4endl;
161
162 size_t numberOfElements = G4Element::GetNumberOfElements();
163 static const G4ElementTable *theElementTable = G4Element::GetElementTable();
164
165 for ( size_t i = 0 ; i < numberOfElements ; ++i )
166 {
167
168 G4cout << (*theElementTable)[i]->GetName() << G4endl;
169
170 G4int ie = 0;
171
172 for ( ie = 0 ; ie < 130 ; ie++ )
173 {
174 G4double eKinetic = 1.0e-5 * std::pow ( 10.0 , ie/10.0 ) *eV;
175 G4bool outOfRange = false;
176
177 if ( eKinetic < 20*MeV )
178 {
179 G4cout << eKinetic/eV << " " << (*((*theCrossSections)(i))).GetValue(eKinetic, outOfRange)/barn << G4endl;
180 }
181
182 }
183
184 G4cout << G4endl;
185 }
186
187 //G4cout << "G4NeutronHPInelasticData::DumpPhysicsTable still to be implemented"<<G4endl;
188}
189
190#include "G4NucleiProperties.hh"
191
193GetCrossSection(const G4DynamicParticle* aP, const G4Element*anE, G4double aT)
194{
195 G4double result = 0;
196 G4bool outOfRange;
197 G4int index = anE->GetIndex();
198
199 // prepare neutron
200 G4double eKinetic = aP->GetKineticEnergy();
201
202 // T. K.
203//if ( getenv( "G4NEUTRONHP_NEGLECT_DOPPLER" ) )
204//080428
205 if ( !onFlightDB )
206 {
207 G4double factor = 1.0;
208 if ( eKinetic < aT * k_Boltzmann )
209 {
210 // below 0.1 eV neutrons
211 // Have to do some, but now just igonre.
212 // Will take care after performance check.
213 // factor = factor * targetV;
214 }
215 return ( (*((*theCrossSections)(index))).GetValue(eKinetic, outOfRange) )* factor;
216 }
217
218 G4ReactionProduct theNeutron( aP->GetDefinition() );
219 theNeutron.SetMomentum( aP->GetMomentum() );
220 theNeutron.SetKineticEnergy( eKinetic );
221
222 // prepare thermal nucleus
223 G4Nucleus aNuc;
224 G4double eps = 0.0001;
225 G4double theA = anE->GetN();
226 G4double theZ = anE->GetZ();
227 G4double eleMass;
228 eleMass = ( G4NucleiProperties::GetNuclearMass(static_cast<G4int>(theA+eps), static_cast<G4int>(theZ+eps))
230
231 G4ReactionProduct boosted;
232 G4double aXsection;
233
234 // MC integration loop
235 G4int counter = 0;
236 G4int failCount = 0;
237 G4double buffer = 0;
238 G4int size = G4int(std::max(10., aT/60*kelvin));
239 G4ThreeVector neutronVelocity = 1./G4Neutron::Neutron()->GetPDGMass()*theNeutron.GetMomentum();
240 G4double neutronVMag = neutronVelocity.mag();
241
242 while(counter == 0 || std::abs(buffer-result/std::max(1,counter)) > 0.01*buffer)
243 {
244 if(counter) buffer = result/counter;
245 while (counter<size)
246 {
247 counter ++;
248 G4ReactionProduct aThermalNuc = aNuc.GetThermalNucleus(eleMass, aT);
249 boosted.Lorentz(theNeutron, aThermalNuc);
250 G4double theEkin = boosted.GetKineticEnergy();
251 aXsection = (*((*theCrossSections)(index))).GetValue(theEkin, outOfRange);
252 if(aXsection <0)
253 {
254 if(failCount<1000)
255 {
256 failCount++;
257 counter--;
258 continue;
259 }
260 else
261 {
262 aXsection = 0;
263 }
264 }
265 // velocity correction.
266 G4ThreeVector targetVelocity = 1./aThermalNuc.GetMass()*aThermalNuc.GetMomentum();
267 aXsection *= (targetVelocity-neutronVelocity).mag()/neutronVMag;
268 result += aXsection;
269 }
270 size += size;
271 }
272 result /= counter;
273/*
274 // Checking impact of G4NEUTRONHP_NEGLECT_DOPPLER
275 G4cout << " result " << result << " "
276 << (*((*theCrossSections)(index))).GetValue(eKinetic, outOfRange) << " "
277 << (*((*theCrossSections)(index))).GetValue(eKinetic, outOfRange) /result << G4endl;
278*/
279 return result;
280}
std::vector< G4Element * > G4ElementTable
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
double mag() const
G4ParticleDefinition * GetDefinition() const
G4double GetKineticEnergy() const
G4ThreeVector GetMomentum() const
G4double GetZ() const
Definition: G4Element.hh:131
static size_t GetNumberOfElements()
Definition: G4Element.cc:406
size_t GetIndex() const
Definition: G4Element.hh:182
static const G4ElementTable * GetElementTable()
Definition: G4Element.cc:399
G4double GetN() const
Definition: G4Element.hh:134
G4double GetTemperature() const
Definition: G4Material.hh:181
G4PhysicsVector * MakePhysicsVector(G4Element *thE, G4NeutronHPFissionData *theP)
static G4NeutronHPData * Instance()
void DumpPhysicsTable(const G4ParticleDefinition &)
void BuildPhysicsTable(const G4ParticleDefinition &)
G4double GetIsoCrossSection(const G4DynamicParticle *, G4int, G4int, const G4Isotope *, const G4Element *, const G4Material *)
G4bool IsIsoApplicable(const G4DynamicParticle *, G4int, G4int, const G4Element *, const G4Material *)
G4double GetCrossSection(const G4DynamicParticle *, const G4Element *, G4double aT)
static G4Neutron * Neutron()
Definition: G4Neutron.cc:104
static G4double GetNuclearMass(const G4double A, const G4double Z)
G4ReactionProduct GetThermalNucleus(G4double aMass, G4double temp=-1) const
Definition: G4Nucleus.cc:130
void push_back(G4PhysicsVector *)
void clearAndDestroy()
void SetMomentum(const G4double x, const G4double y, const G4double z)
G4double GetKineticEnergy() const
G4ThreeVector GetMomentum() const
void Lorentz(const G4ReactionProduct &p1, const G4ReactionProduct &p2)
void SetKineticEnergy(const G4double en)
G4double GetMass() const
void SetMaxKinEnergy(G4double value)
void SetMinKinEnergy(G4double value)
#define buffer
Definition: xmlparse.cc:611