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geant4/examples/extended/biasing/B01/exampleB01.out
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Geant4 version Name: global-V08-01-05 (15-December-2006)
Copyright : Geant4 Collaboration
Reference : NIM A 506 (2003), 250-303
WWW : http://cern.ch/geant4
*************************************************************
B01PhysicsList::SetCuts:CutLength : 1 (mm)
Going to assign importance: 1, to volume: cell_01
Going to assign importance: 2, to volume: cell_02
Going to assign importance: 4, to volume: cell_03
Going to assign importance: 8, to volume: cell_04
Going to assign importance: 16, to volume: cell_05
Going to assign importance: 32, to volume: cell_06
Going to assign importance: 64, to volume: cell_07
Going to assign importance: 128, to volume: cell_08
Going to assign importance: 256, to volume: cell_09
Going to assign importance: 512, to volume: cell_10
Going to assign importance: 1024, to volume: cell_11
Going to assign importance: 2048, to volume: cell_12
Going to assign importance: 4096, to volume: cell_13
Going to assign importance: 8192, to volume: cell_14
Going to assign importance: 16384, to volume: cell_15
Going to assign importance: 32768, to volume: cell_16
Going to assign importance: 65536, to volume: cell_17
Going to assign importance: 131072, to volume: cell_18
=== G4ProcessPlacer::AddProcessAsSecondDoIt: for: neutron
ProcessName: MScoreProcess
The initial Vectors:
GPIL Vector:
Decay
LCapture
LFission
inelastic
LElastic
Transportation
DoIt Vector:
Transportation
LElastic
inelastic
LFission
LCapture
Decay
The final Vectors:
GPIL Vector:
Decay
LCapture
LFission
inelastic
LElastic
MScoreProcess
Transportation
DoIt Vector:
Transportation
MScoreProcess
LElastic
inelastic
LFission
LCapture
Decay
================================================
=== G4ProcessPlacer::AddProcessAsSecondDoIt: for: neutron
ProcessName: MassImportanceProcess
The initial Vectors:
GPIL Vector:
Decay
LCapture
LFission
inelastic
LElastic
MScoreProcess
Transportation
DoIt Vector:
Transportation
MScoreProcess
LElastic
inelastic
LFission
LCapture
Decay
The final Vectors:
GPIL Vector:
Decay
LCapture
LFission
inelastic
LElastic
MScoreProcess
MassImportanceProcess
Transportation
DoIt Vector:
Transportation
MassImportanceProcess
MScoreProcess
LElastic
inelastic
LFission
LCapture
Decay
================================================
conv: Total cross sections has a good parametrisation from 1.5 MeV to 100 GeV for all Z;
sampling secondary e+e- according Bethe-Heitler model
tables are built for gamma
Lambda tables from 1.022 MeV to 100 GeV in 100 bins.
compt: Total cross sections has a good parametrisation from 10 KeV to (100/Z) GeV
Sampling according Klein-Nishina model
tables are built for gamma
Lambda tables from 100 eV to 100 GeV in 90 bins.
phot: Total cross sections from Sandia parametrisation.
Sampling according PhotoElectric model
msc: Model variant of multiple scattering for e-
Lambda tables from 100 eV to 100 TeV in 120 bins.
Boundary/stepping algorithm is active with facrange= 0.02 Step limitation 1
eIoni: tables are built for e-
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Delta cross sections from Moller+Bhabha, good description from 1 KeV to 100 GeV.
Step function: finalRange(mm)= 1, dRoverRange= 0.2, integral: 1
eBrem: tables are built for e-
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Total cross sections from a parametrisation based on the EEDL data library.
Good description from 1 KeV to 100 GeV, log scale extrapolation above 100 GeV.
eIoni: tables are built for e+
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Delta cross sections from Moller+Bhabha, good description from 1 KeV to 100 GeV.
Step function: finalRange(mm)= 1, dRoverRange= 0.2, integral: 1
eBrem: tables are built for e+
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Total cross sections from a parametrisation based on the EEDL data library.
Good description from 1 KeV to 100 GeV, log scale extrapolation above 100 GeV.
annihil: Sampling according eplus2gg model
tables are built for e+
Lambda tables from 100 eV to 100 TeV in 120 bins.
msc: Model variant of multiple scattering for proton
Lambda tables from 100 eV to 100 TeV in 120 bins.
Boundary/stepping algorithm is active with facrange= 0.02 Step limitation 1
hIoni: tables are built for proton
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Scaling relation is used to proton dE/dx and range
Bether-Bloch model for Escaled > 2 MeV, ICRU49 parametrisation for protons below.
Step function: finalRange(mm)= 1, dRoverRange= 0.2, integral: 1
msc: Model variant of multiple scattering for GenericIon
Boundary/stepping algorithm is active with facrange= 0.02 Step limitation 1
hIoni: tables are built for anti_proton
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Scaling relation is used to proton dE/dx and range
Bether-Bloch model for Escaled > 2 MeV, ICRU49 parametrisation for protons below.
Step function: finalRange(mm)= 1, dRoverRange= 0.2, integral: 1
msc: Model variant of multiple scattering for mu+
Lambda tables from 100 eV to 100 TeV in 120 bins.
Boundary/stepping algorithm is active with facrange= 0.02 Step limitation 1
muIoni: tables are built for mu+
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Bether-Bloch model for E > 0.2 MeV, parametrisation of Bragg peak below,
radiative corrections for E > 1 GeV
Step function: finalRange(mm)= 1, dRoverRange= 0.2, integral: 1
muBrems: tables are built for mu+
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Parametrised model
muPairProd: tables are built for mu+
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Parametrised model
muIoni: tables are built for mu-
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Bether-Bloch model for E > 0.2 MeV, parametrisation of Bragg peak below,
radiative corrections for E > 1 GeV
Step function: finalRange(mm)= 1, dRoverRange= 0.2, integral: 1
muBrems: tables are built for mu-
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Parametrised model
muPairProd: tables are built for mu-
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Parametrised model
hIoni: tables are built for pi+
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Scaling relation is used to proton dE/dx and range
Bether-Bloch model for Escaled > 0.297504 MeV, ICRU49 parametrisation for protons below.
Step function: finalRange(mm)= 1, dRoverRange= 0.2, integral: 1
msc: Model variant of multiple scattering for pi-
Lambda tables from 100 eV to 100 TeV in 120 bins.
Boundary/stepping algorithm is active with facrange= 0.02 Step limitation 1
hIoni: tables are built for pi-
dE/dx and range tables from 100 eV to 100 TeV in 120 bins.
Lambda tables from threshold to 100 TeV in 120 bins.
Scaling relation is used to proton dE/dx and range
Bether-Bloch model for Escaled > 0.297504 MeV, ICRU49 parametrisation for protons below.
Step function: finalRange(mm)= 1, dRoverRange= 0.2, integral: 1
Volume name | Importance| Tr.Entering| Population| Collisions| Coll*WGT| NumWGTedE| FluxWGTedE| Av.Tr.WGT|
cell_01_rep:0............ | 1 | 106 | 127 | 165 | 165 | 4.7833307 | 8.4257685 | 1 |
cell_02_rep:0............ | 2 | 79 | 170 | 150 | 75 | 8.3770212 | 8.9611837 | 1 |
cell_03_rep:0............ | 4 | 120 | 257 | 292 | 73 | 0.030422242 | 8.1225467 | 1 |
cell_04_rep:0............ | 8 | 118 | 267 | 325 | 40.625 | 6.2788095 | 7.9670281 | 1 |
cell_05_rep:0............ | 16 | 112 | 236 | 298 | 18.625 | 0.066754216 | 7.5980323 | 1 |
cell_06_rep:0............ | 32 | 124 | 264 | 342 | 10.6875 | 5.2637216 | 7.6806894 | 1 |
cell_07_rep:0............ | 64 | 161 | 322 | 438 | 6.84375 | 4.9595564 | 7.2063026 | 1 |
cell_08_rep:0............ | 128 | 205 | 412 | 532 | 4.15625 | 4.0919226 | 6.9949884 | 1 |
cell_09_rep:0............ | 256 | 236 | 482 | 650 | 2.5390625 | 0.11583494 | 6.6067148 | 1 |
cell_10_rep:0............ | 512 | 267 | 549 | 748 | 1.4609375 | 4.0989275 | 6.2777243 | 1 |
cell_11_rep:0............ | 1024 | 325 | 648 | 993 | 0.96972656 | 0.64376933 | 5.8542585 | 1 |
cell_12_rep:0............ | 2048 | 374 | 733 | 1233 | 0.60205078 | 0.13579459 | 5.5076248 | 1 |
cell_13_rep:0............ | 4096 | 412 | 832 | 1361 | 0.33227539 | 3.5686894 | 5.4720131 | 1 |
cell_14_rep:0............ | 8192 | 438 | 897 | 1402 | 0.17114258 | 0.22945117 | 5.496985 | 1 |
cell_15_rep:0............ | 16384 | 476 | 990 | 1656 | 0.10107422 | 0.80759575 | 5.4423419 | 1 |
cell_16_rep:0............ | 32768 | 539 | 1059 | 1738 | 0.053039551 | 3.8380076 | 5.1041349 | 1 |
cell_17_rep:0............ | 65536 | 579 | 1201 | 1995 | 0.030441284 | 0.1904835 | 4.9379711 | 1 |
cell_18_rep:0............ | 131072 | 501 | 1179 | 2198 | 0.016769409 | 0.54009342 | 4.7248222 | 1 |
rest_rep:0............... | 131072 | 548 | 548 | 0 | 0 | 0 | 0 | 0 |
shieldWorld_rep:0........ | 1 | 11 | 110 | 0 | 0 | 10 | 10 | 1 |
=== G4ProcessPlacer::RemoveProcess: for: neutron
ProcessName: MassImportanceProcess, will be removed!
The initial Vectors:
GPIL Vector:
Decay
LCapture
LFission
inelastic
LElastic
MScoreProcess
MassImportanceProcess
Transportation
DoIt Vector:
Transportation
MassImportanceProcess
MScoreProcess
LElastic
inelastic
LFission
LCapture
Decay
The final Vectors:
GPIL Vector:
Decay
LCapture
LFission
inelastic
LElastic
MScoreProcess
Transportation
DoIt Vector:
Transportation
MScoreProcess
LElastic
inelastic
LFission
LCapture
Decay
================================================
=== G4ProcessPlacer::RemoveProcess: for: neutron
ProcessName: MScoreProcess, will be removed!
The initial Vectors:
GPIL Vector:
Decay
LCapture
LFission
inelastic
LElastic
MScoreProcess
Transportation
DoIt Vector:
Transportation
MScoreProcess
LElastic
inelastic
LFission
LCapture
Decay
The final Vectors:
GPIL Vector:
Decay
LCapture
LFission
inelastic
LElastic
Transportation
DoIt Vector:
Transportation
LElastic
inelastic
LFission
LCapture
Decay
================================================