Geant4 10.7.0
Toolkit for the simulation of the passage of particles through matter
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G4LowEWentzelVIModel.cc
Go to the documentation of this file.
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25//
26//
27// -------------------------------------------------------------------
28//
29// GEANT4 Class file
30//
31//
32// File name: G4LowEWentzelVIModel
33//
34// Author: V.Ivanchenko
35//
36// Creation date: 11.02.2014 from G4WentzelVIModel
37//
38// Modifications:
39//
40// Class Description:
41//
42
43// -------------------------------------------------------------------
44//
45
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48
51#include "G4SystemOfUnits.hh"
52
53//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
54
55using namespace std;
56
58 G4WentzelVIModel(false,"LowEnWentzelVI")
59{
61}
62
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64
66{}
67
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69
71 const G4Track& track,
72 G4double& currentMinimalStep)
73{
74 G4double tlimit = currentMinimalStep;
75 const G4DynamicParticle* dp = track.GetDynamicParticle();
76 G4StepPoint* sp = track.GetStep()->GetPreStepPoint();
77 G4StepStatus stepStatus = sp->GetStepStatus();
79 //G4cout << "G4LowEWentzelVIModel::ComputeTruePathLengthLimit stepStatus= "
80 // << stepStatus << " " << track.GetDefinition()->GetParticleName()
81 // << G4endl;
82
83 // initialisation for each step, lambda may be computed from scratch
89 /*
90 G4cout << "lambdaeff= " << lambdaeff << " Range= " << currentRange
91 << " tlimit= " << tlimit << " 1-cost= " << 1 - cosTetMaxNuc << G4endl;
92 */
93 // extra check for abnormal situation
94 // this check needed to run MSC with eIoni and eBrem inactivated
95 tlimit = std::min(tlimit, currentRange);
96
97 // stop here if small range particle
98 if(tlimit < tlimitminfix) {
99 return ConvertTrueToGeom(tlimit, currentMinimalStep);
100 }
101
102 // pre step
103 G4double presafety = sp->GetSafety();
104 // far from geometry boundary
105 if(currentRange < presafety) {
106 return ConvertTrueToGeom(tlimit, currentMinimalStep);
107 }
108
109 // compute presafety again if presafety <= 0 and no boundary
110 // i.e. when it is needed for optimization purposes
111 if(stepStatus != fGeomBoundary && presafety < tlimitminfix) {
112 presafety = ComputeSafety(sp->GetPosition(), tlimit);
113 if(currentRange < presafety) {
114 return ConvertTrueToGeom(tlimit, currentMinimalStep);
115 }
116 }
117 /*
118 G4cout << "e(MeV)= " << preKinEnergy/MeV
119 << " " << particle->GetParticleName()
120 << " CurLimit(mm)= " << tlimit/mm <<" safety(mm)= " << presafety/mm
121 << " R(mm)= " <<currentRange/mm
122 << " L0(mm^-1)= " << lambdaeff*mm
123 <<G4endl;
124 */
125 // natural limit for high energy
126 G4double rlimit = std::max(facrange*currentRange, lambdaeff);
127 //G4double rlimit = std::max(facrange*currentRange,
128 // 0.7*(1.0 - cosTetMaxNuc)*lambdaeff);
129
130 // low-energy e-
131 rlimit = std::max(rlimit, facsafety*presafety);
132
133 // cut correction
134 //G4double rcut = currentCouple->GetProductionCuts()->GetProductionCut(1);
135 //G4cout << "rcut= " << rcut << " rlimit= " << rlimit << " presafety= "
136 // << presafety << " 1-cosThetaMax= " <<1-cosThetaMax
137 //<< " 1-cosTetMaxNuc= " << 1-cosTetMaxNuc << G4endl;
138 //if(rcut > rlimit) { rlimit = std::min(rlimit, rcut*sqrt(rlimit/rcut)); }
139
140 tlimit = std::min(tlimit, rlimit);
141 tlimit = std::max(tlimit, tlimitminfix);
142
143 // step limit in infinite media
144 tlimit = std::min(tlimit, 50*currentMaterial->GetRadlen()/facgeom);
145
146 //compute geomlimit and force few steps within a volume
148 && stepStatus == fGeomBoundary) {
149
150 G4double geomlimit = ComputeGeomLimit(track, presafety, currentRange);
151 tlimit = std::min(tlimit, geomlimit/facgeom);
152 }
153 /*
154 G4cout << particle->GetParticleName() << " E(MeV)= " << preKinEnergy
155 << " L0= " << lambdaeff << " R= " << currentRange
156 << " tlimit= " << tlimit
157 << " currentMinimalStep= " << currentMinimalStep << G4endl;
158 */
159 return ConvertTrueToGeom(tlimit, currentMinimalStep);
160}
161
162//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
@ fUseDistanceToBoundary
G4StepStatus
Definition: G4StepStatus.hh:40
@ fGeomBoundary
Definition: G4StepStatus.hh:43
double G4double
Definition: G4Types.hh:83
G4double GetKineticEnergy() const
virtual G4double ComputeTruePathLengthLimit(const G4Track &track, G4double &currentMinimalStep)
G4double GetRadlen() const
Definition: G4Material.hh:218
G4StepPoint * GetPreStepPoint() const
const G4DynamicParticle * GetDynamicParticle() const
const G4MaterialCutsCouple * GetMaterialCutsCouple() const
const G4Step * GetStep() const
G4double facrange
Definition: G4VMscModel.hh:193
G4double ComputeGeomLimit(const G4Track &, G4double &presafety, G4double limit)
Definition: G4VMscModel.hh:287
G4double GetTransportMeanFreePath(const G4ParticleDefinition *part, G4double kinEnergy)
Definition: G4VMscModel.hh:405
G4double GetRange(const G4ParticleDefinition *part, G4double kineticEnergy, const G4MaterialCutsCouple *couple)
Definition: G4VMscModel.hh:330
G4MscStepLimitType steppingAlgorithm
Definition: G4VMscModel.hh:203
G4double ConvertTrueToGeom(G4double &tLength, G4double &gLength)
Definition: G4VMscModel.hh:277
G4double ComputeSafety(const G4ThreeVector &position, G4double limit=DBL_MAX)
Definition: G4VMscModel.hh:269
G4double facsafety
Definition: G4VMscModel.hh:195
G4double facgeom
Definition: G4VMscModel.hh:194
G4double SetupKinematic(G4double kinEnergy, const G4Material *mat)
const G4MaterialCutsCouple * currentCouple
void DefineMaterial(const G4MaterialCutsCouple *)
const G4ParticleDefinition * particle
const G4Material * currentMaterial
void SetSingleScatteringFactor(G4double)
G4WentzelOKandVIxSection * wokvi