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geant4/examples/advanced/underground_physics/underground_physics.out
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Environment variable "G4FORCE_RUN_MANAGER_TYPE" enabled with value == Serial. Forcing G4RunManager type...
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!!! WARNING - FPE detection is activated !!!
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!!! G4Backtrace is activated !!!
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Geant4 version Name: geant4-11-03-ref-00 (6-December-2024)
Copyright : Geant4 Collaboration
References : NIM A 506 (2003), 250-303
: IEEE-TNS 53 (2006), 270-278
: NIM A 835 (2016), 186-225
WWW : http://geant4.org/
**************************************************************
Visualization Manager instantiating with verbosity "warnings (3)"...
Visualization Manager initialising...
Registering graphics systems...
You have successfully registered the following graphics systems.
Registered graphics systems are:
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OpenGLImmediateQt (OGLIQt, OGLI)
OpenGLStoredQt (OGLSQt, OGL, OGLS)
OpenGLImmediateXm (OGLIXm, OGLIQt_FALLBACK)
OpenGLStoredXm (OGLSXm, OGLSQt_FALLBACK)
OpenGLImmediateX (OGLIX, OGLIQt_FALLBACK, OGLIXm_FALLBACK)
OpenGLStoredX (OGLSX, OGLSQt_FALLBACK, OGLSXm_FALLBACK)
RayTracerX (RayTracerX)
Qt3D (Qt3D)
TOOLSSG_X11_GLES (TSG_X11_GLES, TSGX11, TSG_XT_GLES_FALLBACK)
TOOLSSG_X11_ZB (TSG_X11_ZB, TSGX11ZB)
TOOLSSG_XT_GLES (TSG_XT_GLES, TSGXt, TSG_QT_GLES_FALLBACK)
TOOLSSG_XT_ZB (TSG_XT_ZB, TSGXtZB)
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the command "/vis/open" or "/vis/sceneHandler/create",
or you may omit the driver parameter and choose at run time:
- by argument in the construction of G4VisExecutive
- by environment variable "G4VIS_DEFAULT_DRIVER"
- by entry in "~/.g4session"
- by build flags.
- Note: This feature is not allowed in batch mode.
For further information see "examples/basic/B1/exampleB1.cc"
and "vis.mac".
Registering model factories...
You have successfully registered the following model factories.
Registered model factories:
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drawByAttribute
drawByCharge
drawByOriginVolume
drawByParticleID
drawByEncounteredVolume
Registered models:
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Registered filter factories:
attributeFilter
chargeFilter
originVolumeFilter
particleFilter
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Registered filters:
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Run Duration User Vis Actions: none
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End of Run User Vis Actions: none
Some /vis commands (optionally) take a string to specify colour.
"/vis/list" to see available colours.
Using the DMX gun
Calibration source centre (X,Y,Z): 0, 0, -302.65 mm
User Limits:
theMaxTimeCuts: 5.70045e+291 y
theRoomTimeCut: 1 us
theMaxStepSize: 5.82593e+288 pc
theMinEKine: 250 eV
minRoomMinEKine: 250 eV
OpAbsorption is created
OpBoundary is created
@@@ G4ParticleHPInelasticData instantiated for particle neutron data directory variable is G4NEUTRONHPDATA pointing to /cvmfs/geant4.cern.ch/share/data/G4NDL4.7.1
DMXPhysicsList::SetCuts:CutLength : 1 um
Verbosity Set to: 0
=======================================================================
====== Electromagnetic Physics Parameters ========
=======================================================================
LPM effect enabled 1
Enable creation and use of sampling tables 0
Apply cuts on all EM processes 0
Use combined TransportationWithMsc Disabled
Use general process 0
Enable linear polarisation for gamma 0
Enable photoeffect sampling below K-shell 1
Enable sampling of quantum entanglement 0
X-section factor for integral approach 0.8
Min kinetic energy for tables 100 eV
Max kinetic energy for tables 100 GeV
Number of bins per decade of a table 20
Verbose level 1
Verbose level for worker thread 0
Bremsstrahlung energy threshold above which
primary e+- is added to the list of secondary 100 TeV
Bremsstrahlung energy threshold above which primary
muon/hadron is added to the list of secondary 100 TeV
Positron annihilation at rest model SimplePositronium
Enable 3 gamma annihilation on fly 0
Lowest triplet kinetic energy 1 MeV
Enable sampling of gamma linear polarisation 0
5D gamma conversion model type 0
5D gamma conversion model on isolated ion 0
Use Ricardo-Gerardo pair production model 0
Livermore data directory epics_2017
=======================================================================
====== Ionisation Parameters ========
=======================================================================
Step function for e+- (0.2, 0.1 mm)
Step function for muons/hadrons (0.2, 0.05 mm)
Step function for light ions (0.1, 0.001 mm)
Step function for general ions (0.1, 0.001 mm)
Lowest e+e- kinetic energy 1 keV
Lowest muon/hadron kinetic energy 1 keV
Use ICRU90 data 0
Fluctuations of dE/dx are enabled 1
Type of fluctuation model for leptons and hadrons Universal
Use built-in Birks satuaration 0
Build CSDA range enabled 0
Use cut as a final range enabled 0
Enable angular generator interface 0
Max kinetic energy for CSDA tables 1 GeV
Max kinetic energy for NIEL computation 0 eV
Linear loss limit 0.01
Read data from file for e+e- pair production by mu 0
=======================================================================
====== Multiple Scattering Parameters ========
=======================================================================
Type of msc step limit algorithm for e+- 3
Type of msc step limit algorithm for muons/hadrons 0
Msc lateral displacement for e+- enabled 1
Msc lateral displacement for muons and hadrons 0
Urban msc model lateral displacement alg96 1
Range factor for msc step limit for e+- 0.04
Range factor for msc step limit for muons/hadrons 0.2
Geometry factor for msc step limitation of e+- 2.5
Safety factor for msc step limit for e+- 0.6
Skin parameter for msc step limitation of e+- 1
Lambda limit for msc step limit for e+- 1 mm
Use Mott correction for e- scattering 0
Factor used for dynamic computation of angular
limit between single and multiple scattering 1
Fixed angular limit between single
and multiple scattering 3.1416 rad
Upper energy limit for e+- multiple scattering 100 MeV
Type of electron single scattering model 0
Type of nuclear form-factor 1
Screening factor 1
=======================================================================
====== Atomic Deexcitation Parameters ========
=======================================================================
Fluorescence enabled 1
Directory in G4LEDATA for fluorescence data files fluor
Auger electron cascade enabled 1
PIXE atomic de-excitation enabled 1
De-excitation module ignores cuts 0
Type of PIXE cross section for hadrons Empirical
Type of PIXE cross section for e+- Livermore
=======================================================================
### === Deexcitation model UAtomDeexcitation is activated for 1 region:
DefaultRegionForTheWorld 1 1 1
### === G4UAtomicDeexcitation::InitialiseForNewRun()
### === Auger flag: 1
### === Ignore cuts flag: 0
### === PIXE model for hadrons: Empirical
### === PIXE model for e+-: Livermore
Rayl: for gamma SubType=11 BuildTable=1
Lambda table from 100 eV to 150 keV, 20 bins/decade, spline: 0
LambdaPrime table from 150 keV to 100 GeV in 116 bins
===== EM models for the G4Region DefaultRegionForTheWorld ======
LivermoreRayleigh : Emin= 0 eV Emax= 100 GeV CullenGenerator
phot: for gamma SubType=12 BuildTable=0
LambdaPrime table from 200 keV to 100 GeV in 114 bins
===== EM models for the G4Region DefaultRegionForTheWorld ======
LivermorePhElectric : Emin= 0 eV Emax= 100 GeV SauterGavrila Fluo
compt: for gamma SubType=13 BuildTable=1
Lambda table from 100 eV to 1 MeV, 20 bins/decade, spline: 1
LambdaPrime table from 1 MeV to 100 GeV in 100 bins
===== EM models for the G4Region DefaultRegionForTheWorld ======
LivermoreCompton : Emin= 0 eV Emax= 100 GeV Fluo
conv: for gamma SubType=14 BuildTable=1
Lambda table from 1.022 MeV to 100 GeV, 24 bins/decade, spline: 1
===== EM models for the G4Region DefaultRegionForTheWorld ======
BetheHeitler5D : Emin= 0 eV Emax= 100 GeV ModifiedTsai
msc: for e- SubType= 10
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc : Emin= 0 eV Emax= 100 GeV Nbins=180 100 eV - 100 GeV
StepLim=DistanceToBoundary Rfact=0.04 Gfact=2.5 Sfact=0.6 DispFlag:1 Skin=1 Llim=1 mm
eIoni: for e- XStype:3 SubType=2
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
StepFunction=(0.2, 0.1 mm), integ: 3, fluct: 1, linLossLim= 0.01
===== EM models for the G4Region DefaultRegionForTheWorld ======
LowEnergyIoni : Emin= 0 eV Emax= 100 keV deltaVI
MollerBhabha : Emin= 100 keV Emax= 100 GeV
eBrem: for e- XStype:4 SubType=3
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
LPM flag: 1 for E > 1 GeV, VertexHighEnergyTh(GeV)= 100000
===== EM models for the G4Region DefaultRegionForTheWorld ======
eBremSB : Emin= 0 eV Emax= 1 GeV ModifiedTsai
eBremLPM : Emin= 1 GeV Emax= 100 GeV ModifiedTsai
msc: for e+ SubType= 10
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc : Emin= 0 eV Emax= 100 GeV Nbins=180 100 eV - 100 GeV
StepLim=DistanceToBoundary Rfact=0.04 Gfact=2.5 Sfact=0.6 DispFlag:1 Skin=1 Llim=1 mm
eIoni: for e+ XStype:3 SubType=2
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
StepFunction=(0.2, 0.1 mm), integ: 3, fluct: 1, linLossLim= 0.01
===== EM models for the G4Region DefaultRegionForTheWorld ======
MollerBhabha : Emin= 0 eV Emax= 100 GeV
eBrem: for e+ XStype:4 SubType=3
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
LPM flag: 1 for E > 1 GeV, VertexHighEnergyTh(GeV)= 100000
===== EM models for the G4Region DefaultRegionForTheWorld ======
eBremSB : Emin= 0 eV Emax= 1 GeV ModifiedTsai
eBremLPM : Emin= 1 GeV Emax= 100 GeV ModifiedTsai
annihil: for e+ XStype:2 SubType=5 AtRestModel:Simple BuildTable=0
===== EM models for the G4Region DefaultRegionForTheWorld ======
eplus2gg : Emin= 0 eV Emax= 100 GeV
msc: for proton SubType= 10
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc : Emin= 0 eV Emax= 100 GeV Nbins=180 100 eV - 100 GeV
StepLim=Minimal Rfact=0.2 Gfact=2.5 Sfact=0.6 DispFlag:0 Skin=1 Llim=1 mm
hIoni: for proton XStype:3 SubType=2
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
StepFunction=(0.2, 0.05 mm), integ: 3, fluct: 1, linLossLim= 0.01
===== EM models for the G4Region DefaultRegionForTheWorld ======
Bragg : Emin= 0 eV Emax= 2 MeV
BetheBloch : Emin= 2 MeV Emax= 100 GeV
===== Limit on energy threshold has been applied
hBrems: for proton XStype:1 SubType=3
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
===== EM models for the G4Region DefaultRegionForTheWorld ======
hBrem : Emin= 0 eV Emax= 100 GeV ModifiedMephi
===== Limit on energy threshold has been applied
msc: for GenericIon SubType= 10
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc : Emin= 0 eV Emax= 100 GeV
StepLim=Minimal Rfact=0.2 Gfact=2.5 Sfact=0.6 DispFlag:0 Skin=1 Llim=1 mm
ionIoni: for GenericIon XStype:3 SubType=2
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
StepFunction=(0.1, 0.001 mm), integ: 3, fluct: 1, linLossLim= 0.02
===== EM models for the G4Region DefaultRegionForTheWorld ======
Bragg : Emin= 0 eV Emax= 2 MeV
BetheBloch : Emin= 2 MeV Emax= 100 GeV
===== Limit on energy threshold has been applied
nuclearStopping: for GenericIon SubType=8 BuildTable=0
===== EM models for the G4Region DefaultRegionForTheWorld ======
ICRU49NucStopping : Emin= 0 eV Emax= 10 GeV
======================================================================
====== Radioactive Decay Physics Parameters =======
======================================================================
min MeanLife (from G4NuclideTable) 1 ns
Max life time (from G4DeexPrecoParameters) 1000 ps
Internal e- conversion flag 1
Stored internal conversion coefficients 1
Enabled atomic relaxation mode 1
Enable correlated gamma emission 0
Max 2J for sampling of angular correlations 10
Atomic de-excitation enabled 1
Auger electron emission enabled 1
Check EM cuts disabled for atomic de-excitation 0
Use Bearden atomic level energies 0
Use ANSTO fluorescence model 0
Threshold for very long decay time at rest 1e+60 y
======================================================================
====================================================================
HADRONIC PROCESSES SUMMARY (verbose level 1)
-----------------------------------------------------------------------
Hadronic Processes for alpha
Process: hadElastic
Model: hElasticLHEP: 0 eV /n ---> 100 TeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 2.88022e+295 J
Process: inelastic
Model: FTFP: 3 GeV/n ---> 100 TeV/n
Model: BertiniCascade: 0 eV /n ---> 6 GeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 2.88022e+295 J
-----------------------------------------------------------------------
Hadronic Processes for anti_neutron
Process: hadElastic
Model: hElasticLHEP: 0 eV ---> 100 TeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 2.88022e+295 J
Process: inelastic
Model: FTFP: 0 eV ---> 100 TeV
Cr_sctns: AntiAGlauber: 0 eV ---> 2.88022e+295 J
-----------------------------------------------------------------------
Hadronic Processes for anti_proton
Process: hadElastic
Model: hElasticLHEP: 0 eV ---> 100 MeV
Model: AntiAElastic: 100 MeV ---> 100 TeV
Cr_sctns: AntiAGlauber: 0 eV ---> 2.88022e+295 J
Process: inelastic
Model: FTFP: 0 eV ---> 100 TeV
Cr_sctns: AntiAGlauber: 0 eV ---> 2.88022e+295 J
Process: hFritiofCaptureAtRest
-----------------------------------------------------------------------
Hadronic Processes for deuteron
Process: hadElastic
Model: hElasticLHEP: 0 eV /n ---> 100 TeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 2.88022e+295 J
Process: inelastic
Model: FTFP: 3 GeV/n ---> 100 TeV/n
Model: BertiniCascade: 0 eV /n ---> 6 GeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 2.88022e+295 J
-----------------------------------------------------------------------
Hadronic Processes for kaon+
Process: hadElastic
Model: hElasticLHEP: 0 eV ---> 100 TeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 2.88022e+295 J
Process: inelastic
Model: FTFP: 3 GeV ---> 100 TeV
Model: BertiniCascade: 0 eV ---> 6 GeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 2.88022e+295 J
-----------------------------------------------------------------------
Hadronic Processes for kaon-
Process: hadElastic
Model: hElasticLHEP: 0 eV ---> 100 TeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 2.88022e+295 J
Process: inelastic
Model: FTFP: 3 GeV ---> 100 TeV
Model: BertiniCascade: 0 eV ---> 6 GeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 2.88022e+295 J
Process: hBertiniCaptureAtRest
-------------------------------------------------------------------------
Hadronic Processes for mu-
Process: muMinusCaptureAtRest
-----------------------------------------------------------------------
Hadronic Processes for neutron
Process: hadElastic
Model: hElasticCHIPS: 19 MeV ---> 100 TeV
Model: NeutronHPElastic: 0 eV ---> 20 MeV
Cr_sctns: NeutronHPElasticXS: 0 eV ---> 20 MeV
Cr_sctns: G4NeutronElasticXS: 0 eV ---> 100 TeV
Process: inelastic
Model: FTFP: 3 GeV ---> 100 TeV
Model: BertiniCascade: 19 MeV ---> 6 GeV
Model: NeutronHPInelastic: 0 eV ---> 20 MeV
Cr_sctns: NeutronHPInelasticXS: 0 eV ---> 20 MeV
Cr_sctns: G4NeutronInelasticXS: 0 eV ---> 100 TeV
Process: nCapture
Model: NeutronHPCapture: 0 eV ---> 20 MeV
Cr_sctns: NeutronHPCaptureXS: 0 eV ---> 100 TeV
Cr_sctns: G4NeutronCaptureXS: 0 eV ---> 100 TeV
-----------------------------------------------------------------------
Hadronic Processes for pi+
Process: hadElastic
Model: hElasticGlauber: 0 eV ---> 100 TeV
Cr_sctns: BarashenkovGlauberGribov: 0 eV ---> 100 TeV
Process: inelastic
Model: FTFP: 3 GeV ---> 100 TeV
Model: BertiniCascade: 0 eV ---> 6 GeV
Cr_sctns: BarashenkovGlauberGribov: 0 eV ---> 100 TeV
-----------------------------------------------------------------------
Hadronic Processes for pi-
Process: hadElastic
Model: hElasticGlauber: 0 eV ---> 100 TeV
Cr_sctns: BarashenkovGlauberGribov: 0 eV ---> 100 TeV
Process: inelastic
Model: FTFP: 3 GeV ---> 100 TeV
Model: BertiniCascade: 0 eV ---> 6 GeV
Cr_sctns: BarashenkovGlauberGribov: 0 eV ---> 100 TeV
Process: hBertiniCaptureAtRest
-----------------------------------------------------------------------
Hadronic Processes for proton
Process: hadElastic
Model: hElasticCHIPS: 0 eV ---> 100 TeV
Cr_sctns: BarashenkovGlauberGribov: 0 eV ---> 100 TeV
Process: inelastic
Model: FTFP: 3 GeV ---> 100 TeV
Model: BertiniCascade: 0 eV ---> 6 GeV
Cr_sctns: BarashenkovGlauberGribov: 0 eV ---> 100 TeV
-----------------------------------------------------------------------
Hadronic Processes for triton
Process: hadElastic
Model: hElasticLHEP: 0 eV /n ---> 100 TeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 2.88022e+295 J
Process: inelastic
Model: FTFP: 3 GeV/n ---> 100 TeV/n
Model: BertiniCascade: 0 eV /n ---> 6 GeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 2.88022e+295 J
-------------------------------------------------------------------------
Hadronic Processes for GenericIon
Process: RadioactiveDecay
=======================================================================
====== Geant4 Native Pre-compound Model Parameters ========
=======================================================================
Type of pre-compound inverse x-section 1
Pre-compound model active 1
Pre-compound excitation low energy 100 keV
Pre-compound excitation high energy 30 MeV
Angular generator for pre-compound model 1
Use NeverGoBack option for pre-compound model 0
Use SoftCutOff option for pre-compound model 0
Use CEM transitions for pre-compound model 1
Use GNASH transitions for pre-compound model 0
Use HETC submodel for pre-compound model 0
=======================================================================
====== Nuclear De-excitation Module Parameters ========
=======================================================================
Type of de-excitation inverse x-section 3
Type of de-excitation factory Evaporation+GEM
Number of de-excitation channels 68
Min excitation energy 10 eV
Min energy per nucleon for multifragmentation 200 GeV
Limit excitation energy for Fermi BreakUp 20 MeV
Level density (1/MeV) 0.075
Use simple level density model 1
Use discrete excitation energy of the residual 0
Time limit for long lived isomeres 1000 ps
Isomer production flag 1
Internal e- conversion flag 1
Store e- internal conversion data 1
Correlated gamma emission flag 0
Max 2J for sampling of angular correlations 10
=======================================================================
msc: for alpha SubType= 10
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc : Emin= 0 eV Emax= 100 GeV
StepLim=Minimal Rfact=0.2 Gfact=2.5 Sfact=0.6 DispFlag:0 Skin=1 Llim=1 mm
ionIoni: for alpha XStype:3 SubType=2
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
StepFunction=(0.1, 0.001 mm), integ: 3, fluct: 1, linLossLim= 0.02
===== EM models for the G4Region DefaultRegionForTheWorld ======
BraggIon : Emin= 0 eV Emax=7.9452 MeV
BetheBloch : Emin=7.9452 MeV Emax= 100 GeV
===== Limit on energy threshold has been applied
nuclearStopping: for alpha SubType=8 BuildTable=0
===== EM models for the G4Region DefaultRegionForTheWorld ======
ICRU49NucStopping : Emin= 0 eV Emax= 10 GeV
msc: for anti_proton SubType= 10
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc : Emin= 0 eV Emax= 100 GeV Nbins=180 100 eV - 100 GeV
StepLim=Minimal Rfact=0.2 Gfact=2.5 Sfact=0.6 DispFlag:0 Skin=1 Llim=1 mm
hIoni: for anti_proton XStype:3 SubType=2
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
StepFunction=(0.2, 0.05 mm), integ: 3, fluct: 1, linLossLim= 0.01
===== EM models for the G4Region DefaultRegionForTheWorld ======
ICRU73QO : Emin= 0 eV Emax= 2 MeV
BetheBloch : Emin= 2 MeV Emax= 100 GeV
===== Limit on energy threshold has been applied
msc: for kaon+ SubType= 10
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc : Emin= 0 eV Emax= 100 GeV Nbins=180 100 eV - 100 GeV
StepLim=Minimal Rfact=0.2 Gfact=2.5 Sfact=0.6 DispFlag:0 Skin=1 Llim=1 mm
hIoni: for kaon+ XStype:3 SubType=2
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
StepFunction=(0.2, 0.05 mm), integ: 3, fluct: 1, linLossLim= 0.01
===== EM models for the G4Region DefaultRegionForTheWorld ======
Bragg : Emin= 0 eV Emax=1.05231 MeV
BetheBloch : Emin=1.05231 MeV Emax= 100 GeV
===== Limit on energy threshold has been applied
msc: for kaon- SubType= 10
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc : Emin= 0 eV Emax= 100 GeV Nbins=180 100 eV - 100 GeV
StepLim=Minimal Rfact=0.2 Gfact=2.5 Sfact=0.6 DispFlag:0 Skin=1 Llim=1 mm
hIoni: for kaon- XStype:3 SubType=2
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
StepFunction=(0.2, 0.05 mm), integ: 3, fluct: 1, linLossLim= 0.01
===== EM models for the G4Region DefaultRegionForTheWorld ======
ICRU73QO : Emin= 0 eV Emax=1.05231 MeV
BetheBloch : Emin=1.05231 MeV Emax= 100 GeV
===== Limit on energy threshold has been applied
msc: for mu+ SubType= 10
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc : Emin= 0 eV Emax= 100 GeV Nbins=180 100 eV - 100 GeV
StepLim=Minimal Rfact=0.2 Gfact=2.5 Sfact=0.6 DispFlag:0 Skin=1 Llim=1 mm
muIoni: for mu+ XStype:3 SubType=2
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
StepFunction=(0.2, 0.05 mm), integ: 3, fluct: 1, linLossLim= 0.01
===== EM models for the G4Region DefaultRegionForTheWorld ======
Bragg : Emin= 0 eV Emax= 200 keV
MuBetheBloch : Emin= 200 keV Emax= 100 GeV
===== Limit on energy threshold has been applied
muBrems: for mu+ XStype:1 SubType=3
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
===== EM models for the G4Region DefaultRegionForTheWorld ======
MuBrem : Emin= 0 eV Emax= 100 GeV ModifiedMephi
===== Limit on energy threshold has been applied
muPairProd: for mu+ XStype:1 SubType=4
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
Sampling table 9x1001 from 0.85 GeV to 0.1 TeV
===== EM models for the G4Region DefaultRegionForTheWorld ======
muPairProd : Emin= 0 eV Emax= 100 GeV ModifiedMephi
msc: for mu- SubType= 10
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc : Emin= 0 eV Emax= 100 GeV Nbins=180 100 eV - 100 GeV
StepLim=Minimal Rfact=0.2 Gfact=2.5 Sfact=0.6 DispFlag:0 Skin=1 Llim=1 mm
muIoni: for mu- XStype:3 SubType=2
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
StepFunction=(0.2, 0.05 mm), integ: 3, fluct: 1, linLossLim= 0.01
===== EM models for the G4Region DefaultRegionForTheWorld ======
ICRU73QO : Emin= 0 eV Emax= 200 keV
MuBetheBloch : Emin= 200 keV Emax= 100 GeV
===== Limit on energy threshold has been applied
muBrems: for mu- XStype:1 SubType=3
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
===== EM models for the G4Region DefaultRegionForTheWorld ======
MuBrem : Emin= 0 eV Emax= 100 GeV ModifiedMephi
===== Limit on energy threshold has been applied
muPairProd: for mu- XStype:1 SubType=4
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
Sampling table 9x1001 from 0.85 GeV to 0.1 TeV
===== EM models for the G4Region DefaultRegionForTheWorld ======
muPairProd : Emin= 0 eV Emax= 100 GeV ModifiedMephi
=======================================================
====== ParticleHP Physics Parameters ========
=======================================================
Use only photo-evaporation 0
Skip missing isotopes 0
Neglect Doppler 0
Do not adjust final state 0
Produce fission fragments 0
Use WendtFissionModel 0
Use NRESP71Model 0
Use DBRC 0
PHP use Poisson 0
PHP check 1
CHECK HP NAMES 0
Enable DEBUG 0
Use probability tables from
=======================================================
@@@ G4ParticleHPInelastic instantiated for particle neutron/n data directory is /cvmfs/geant4.cern.ch/share/data/G4NDL4.7.1/Inelastic
msc: for pi+ SubType= 10
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc : Emin= 0 eV Emax= 100 GeV Nbins=180 100 eV - 100 GeV
StepLim=Minimal Rfact=0.2 Gfact=2.5 Sfact=0.6 DispFlag:0 Skin=1 Llim=1 mm
hIoni: for pi+ XStype:3 SubType=2
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
StepFunction=(0.2, 0.05 mm), integ: 3, fluct: 1, linLossLim= 0.01
===== EM models for the G4Region DefaultRegionForTheWorld ======
Bragg : Emin= 0 eV Emax=297.505 keV
BetheBloch : Emin=297.505 keV Emax= 100 GeV
===== Limit on energy threshold has been applied
hBrems: for pi+ XStype:1 SubType=3
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
===== EM models for the G4Region DefaultRegionForTheWorld ======
hBrem : Emin= 0 eV Emax= 100 GeV ModifiedMephi
===== Limit on energy threshold has been applied
msc: for pi- SubType= 10
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc : Emin= 0 eV Emax= 100 GeV Nbins=180 100 eV - 100 GeV
StepLim=Minimal Rfact=0.2 Gfact=2.5 Sfact=0.6 DispFlag:0 Skin=1 Llim=1 mm
hIoni: for pi- XStype:3 SubType=2
dE/dx and range tables from 100 eV to 100 GeV in 180 bins
Lambda tables from threshold to 100 GeV, 20 bins/decade, spline: 1
StepFunction=(0.2, 0.05 mm), integ: 3, fluct: 1, linLossLim= 0.01
===== EM models for the G4Region DefaultRegionForTheWorld ======
ICRU73QO : Emin= 0 eV Emax=297.505 keV
BetheBloch : Emin=297.505 keV Emax= 100 GeV
===== Limit on energy threshold has been applied
========= Table of registered couples ============================
Index : 0 used in the geometry : Yes
Material : Concrete
Range cuts : gamma 1 um e- 1 nm e+ 1 um proton 1 um
Energy thresholds : gamma 250 eV e- 250 eV e+ 1.00436 keV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
Index : 1 used in the geometry : Yes
Material : AIR
Range cuts : gamma 1 um e- 1 nm e+ 1 um proton 1 um
Energy thresholds : gamma 250 eV e- 250 eV e+ 250 eV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
Index : 2 used in the geometry : Yes
Material : wood
Range cuts : gamma 1 um e- 1 nm e+ 1 um proton 1 um
Energy thresholds : gamma 250 eV e- 250 eV e+ 250 eV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
Index : 3 used in the geometry : Yes
Material : MetalAluminium
Range cuts : gamma 1 um e- 1 nm e+ 1 um proton 1 um
Energy thresholds : gamma 250 eV e- 250 eV e+ 1.06385 keV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
Index : 4 used in the geometry : Yes
Material : Steel
Range cuts : gamma 1 um e- 1 nm e+ 1 um proton 1 um
Energy thresholds : gamma 250 eV e- 250 eV e+ 5.52571 keV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
Index : 5 used in the geometry : Yes
Material : Vacuum
Range cuts : gamma 1 um e- 1 nm e+ 1 um proton 1 um
Energy thresholds : gamma 250 eV e- 250 eV e+ 250 eV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
Index : 6 used in the geometry : Yes
Material : LN2
Range cuts : gamma 1 um e- 1 nm e+ 1 um proton 1 um
Energy thresholds : gamma 250 eV e- 250 eV e+ 250 eV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
Index : 7 used in the geometry : Yes
Material : MetalCopper
Range cuts : gamma 1 um e- 1 nm e+ 1 um proton 1 um
Energy thresholds : gamma 250 eV e- 250 eV e+ 6.64446 keV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
Index : 8 used in the geometry : Yes
Material : LXe
Range cuts : gamma 1 um e- 1 nm e+ 1 um proton 1 um
Energy thresholds : gamma 250 eV e- 250 eV e+ 859.963 eV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
Index : 9 used in the geometry : Yes
Material : MetalLead
Range cuts : gamma 1 um e- 1 nm e+ 1 um proton 1 um
Energy thresholds : gamma 1.21764 keV e- 250 eV e+ 6.46937 keV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
Index : 10 used in the geometry : Yes
Material : UraniumSource
Range cuts : gamma 1 um e- 1 nm e+ 1 um proton 1 um
Energy thresholds : gamma 1.50218 keV e- 250 eV e+ 8.09086 keV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
Index : 11 used in the geometry : Yes
Material : quartz
Range cuts : gamma 1 um e- 1 nm e+ 1 um proton 1 um
Energy thresholds : gamma 250 eV e- 250 eV e+ 792.749 eV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
Index : 12 used in the geometry : Yes
Material : CathodeMetalAluminium
Range cuts : gamma 1 um e- 1 nm e+ 1 um proton 1 um
Energy thresholds : gamma 250 eV e- 250 eV e+ 1.06385 keV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
==================================================================
### Run 0 starts (master).
-------- WWWW ------- G4Exception-START -------- WWWW -------
*** G4Exception : Analysis_W001
issued by : G4RootNtupleFileManager::SetNtupleMergingMode
Merging ntuples is not applicable in sequential application.
Setting was ignored.
*** This is just a warning message. ***
-------- WWWW -------- G4Exception-END --------- WWWW -------
---> Begin of event: 0
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 0
---> Begin of event: 10
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 10
---> Begin of event: 20
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 20
---> Begin of event: 30
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 63
Total energy in LXe: 60 keV
Average light collection time: 42.5145 ns
Number of PMT hits (photoelectron equivalent): 47
Event summary in file gamma_1000.out
---> End of event: 30
---> Begin of event: 40
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 51
Total energy in LXe: 60 keV
Average light collection time: 43.548 ns
Number of PMT hits (photoelectron equivalent): 59
Event summary in file gamma_1000.out
---> End of event: 40
---> Begin of event: 50
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 50
---> Begin of event: 60
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 60
---> Begin of event: 70
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 70
---> Begin of event: 80
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 80
---> Begin of event: 90
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 90
---> Begin of event: 100
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 30
Total energy in LXe: 30.2187 keV
Average light collection time: 54.9043 ns
Number of PMT hits (photoelectron equivalent): 36
Event summary in file gamma_1000.out
---> End of event: 100
---> Begin of event: 110
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 52
Total energy in LXe: 60 keV
Average light collection time: 41.2768 ns
Number of PMT hits (photoelectron equivalent): 72
Event summary in file gamma_1000.out
---> End of event: 110
---> Begin of event: 120
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 29
Total energy in LXe: 30.2187 keV
Average light collection time: 69.467 ns
Number of PMT hits (photoelectron equivalent): 27
Event summary in file gamma_1000.out
---> End of event: 120
---> Begin of event: 130
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 20
Total energy in LXe: 30.5479 keV
Average light collection time: 66.6562 ns
Number of PMT hits (photoelectron equivalent): 23
Event summary in file gamma_1000.out
---> End of event: 130
---> Begin of event: 140
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 64
Total energy in LXe: 60 keV
Average light collection time: 39.5752 ns
Number of PMT hits (photoelectron equivalent): 66
Event summary in file gamma_1000.out
---> End of event: 140
---> Begin of event: 150
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 24
Total energy in LXe: 30.2187 keV
Average light collection time: 49.9117 ns
Number of PMT hits (photoelectron equivalent): 78
Event summary in file gamma_1000.out
---> End of event: 150
---> Begin of event: 160
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 20
Total energy in LXe: 30.2187 keV
Average light collection time: 49.891 ns
Number of PMT hits (photoelectron equivalent): 20
Event summary in file gamma_1000.out
---> End of event: 160
---> Begin of event: 170
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 170
---> Begin of event: 180
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 30
Total energy in LXe: 30.5479 keV
Average light collection time: 41.2845 ns
Number of PMT hits (photoelectron equivalent): 30
Event summary in file gamma_1000.out
---> End of event: 180
---> Begin of event: 190
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 47
Total energy in LXe: 39.9974 keV
Average light collection time: 41.1909 ns
Number of PMT hits (photoelectron equivalent): 29
Event summary in file gamma_1000.out
---> End of event: 190
---> Begin of event: 200
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 16
Total energy in LXe: 13.4452 keV
Average light collection time: 44.1654 ns
Number of PMT hits (photoelectron equivalent): 14
Event summary in file gamma_1000.out
---> End of event: 200
---> Begin of event: 210
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 210
---> Begin of event: 220
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 220
---> Begin of event: 230
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 230
---> Begin of event: 240
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 68
Total energy in LXe: 60 keV
Average light collection time: 42.8095 ns
Number of PMT hits (photoelectron equivalent): 71
Event summary in file gamma_1000.out
---> End of event: 240
---> Begin of event: 250
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 250
---> Begin of event: 260
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 260
---> Begin of event: 270
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 270
---> Begin of event: 280
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 66
Total energy in LXe: 60 keV
Average light collection time: 49.5928 ns
Number of PMT hits (photoelectron equivalent): 56
Event summary in file gamma_1000.out
---> End of event: 280
---> Begin of event: 290
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 290
---> Begin of event: 300
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 300
---> Begin of event: 310
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 32
Total energy in LXe: 30.2187 keV
Average light collection time: 40.1664 ns
Number of PMT hits (photoelectron equivalent): 25
Event summary in file gamma_1000.out
---> End of event: 310
---> Begin of event: 320
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 49
Total energy in LXe: 60 keV
Average light collection time: 45.7056 ns
Number of PMT hits (photoelectron equivalent): 60
Event summary in file gamma_1000.out
---> End of event: 320
---> Begin of event: 330
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 330
---> Begin of event: 340
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 340
---> Begin of event: 350
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 350
---> Begin of event: 360
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 360
---> Begin of event: 370
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 370
---> Begin of event: 380
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 73
Total energy in LXe: 60 keV
Average light collection time: 42.7548 ns
Number of PMT hits (photoelectron equivalent): 63
Event summary in file gamma_1000.out
---> End of event: 380
---> Begin of event: 390
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 390
---> Begin of event: 400
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 53
Total energy in LXe: 60 keV
Average light collection time: 41.412 ns
Number of PMT hits (photoelectron equivalent): 57
Event summary in file gamma_1000.out
---> End of event: 400
---> Begin of event: 410
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 410
---> Begin of event: 420
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 420
---> Begin of event: 430
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 430
---> Begin of event: 440
Primary Energy: 60 keV
First hit in LXe: e-
Number of hits in LXe: 37
Total energy in LXe: 18.1742 keV
Average light collection time: 32.3379 ns
Number of PMT hits (photoelectron equivalent): 20
Event summary in file gamma_1000.out
---> End of event: 440
---> Begin of event: 450
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 450
---> Begin of event: 460
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 45
Total energy in LXe: 60 keV
Average light collection time: 50.3792 ns
Number of PMT hits (photoelectron equivalent): 66
Event summary in file gamma_1000.out
---> End of event: 460
---> Begin of event: 470
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 46
Total energy in LXe: 60 keV
Average light collection time: 42.7526 ns
Number of PMT hits (photoelectron equivalent): 52
Event summary in file gamma_1000.out
---> End of event: 470
---> Begin of event: 480
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 480
---> Begin of event: 490
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 28
Total energy in LXe: 30.2187 keV
Average light collection time: 39.8683 ns
Number of PMT hits (photoelectron equivalent): 33
Event summary in file gamma_1000.out
---> End of event: 490
---> Begin of event: 500
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 42
Total energy in LXe: 41.0989 keV
Average light collection time: 44.4851 ns
Number of PMT hits (photoelectron equivalent): 114
Event summary in file gamma_1000.out
---> End of event: 500
---> Begin of event: 510
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 50
Total energy in LXe: 60 keV
Average light collection time: 52.0572 ns
Number of PMT hits (photoelectron equivalent): 45
Event summary in file gamma_1000.out
---> End of event: 510
---> Begin of event: 520
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 44
Total energy in LXe: 60 keV
Average light collection time: 42.3995 ns
Number of PMT hits (photoelectron equivalent): 55
Event summary in file gamma_1000.out
---> End of event: 520
---> Begin of event: 530
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 530
---> Begin of event: 540
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 540
---> Begin of event: 550
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 550
---> Begin of event: 560
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 560
---> Begin of event: 570
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 570
---> Begin of event: 580
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 61
Total energy in LXe: 60 keV
Average light collection time: 57.7734 ns
Number of PMT hits (photoelectron equivalent): 57
Event summary in file gamma_1000.out
---> End of event: 580
---> Begin of event: 590
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 47
Total energy in LXe: 60 keV
Average light collection time: 44.3563 ns
Number of PMT hits (photoelectron equivalent): 64
Event summary in file gamma_1000.out
---> End of event: 590
---> Begin of event: 600
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 600
---> Begin of event: 610
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 610
---> Begin of event: 620
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 620
---> Begin of event: 630
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 27
Total energy in LXe: 30.2187 keV
Average light collection time: 47.06 ns
Number of PMT hits (photoelectron equivalent): 27
Event summary in file gamma_1000.out
---> End of event: 630
---> Begin of event: 640
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 640
---> Begin of event: 650
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 650
---> Begin of event: 660
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 660
---> Begin of event: 670
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 45
Total energy in LXe: 60 keV
Average light collection time: 43.9358 ns
Number of PMT hits (photoelectron equivalent): 62
Event summary in file gamma_1000.out
---> End of event: 670
---> Begin of event: 680
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 680
---> Begin of event: 690
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 690
---> Begin of event: 700
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 700
---> Begin of event: 710
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 710
---> Begin of event: 720
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 720
---> Begin of event: 730
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 730
---> Begin of event: 740
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 740
---> Begin of event: 750
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 750
---> Begin of event: 760
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 29
Total energy in LXe: 30.5479 keV
Average light collection time: 45.8688 ns
Number of PMT hits (photoelectron equivalent): 80
Event summary in file gamma_1000.out
---> End of event: 760
---> Begin of event: 770
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 770
---> Begin of event: 780
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 22
Total energy in LXe: 25.4564 keV
Average light collection time: 53.854 ns
Number of PMT hits (photoelectron equivalent): 26
Event summary in file gamma_1000.out
---> End of event: 780
---> Begin of event: 790
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 790
---> Begin of event: 800
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 800
---> Begin of event: 810
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 31
Total energy in LXe: 30.2187 keV
Average light collection time: 42.5683 ns
Number of PMT hits (photoelectron equivalent): 30
Event summary in file gamma_1000.out
---> End of event: 810
---> Begin of event: 820
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 20
Total energy in LXe: 26.3706 keV
Average light collection time: 36.8862 ns
Number of PMT hits (photoelectron equivalent): 24
Event summary in file gamma_1000.out
---> End of event: 820
---> Begin of event: 830
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 830
---> Begin of event: 840
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 840
---> Begin of event: 850
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 850
---> Begin of event: 860
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 860
---> Begin of event: 870
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 870
---> Begin of event: 880
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 49
Total energy in LXe: 60 keV
Average light collection time: 39.0463 ns
Number of PMT hits (photoelectron equivalent): 65
Event summary in file gamma_1000.out
---> End of event: 880
---> Begin of event: 890
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 890
---> Begin of event: 900
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 57
Total energy in LXe: 60 keV
Average light collection time: 42.1499 ns
Number of PMT hits (photoelectron equivalent): 65
Event summary in file gamma_1000.out
---> End of event: 900
---> Begin of event: 910
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 910
---> Begin of event: 920
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 920
---> Begin of event: 930
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 930
---> Begin of event: 940
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 22
Total energy in LXe: 30.5479 keV
Average light collection time: 54.8618 ns
Number of PMT hits (photoelectron equivalent): 32
Event summary in file gamma_1000.out
---> End of event: 940
---> Begin of event: 950
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 950
---> Begin of event: 960
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 25
Total energy in LXe: 30.2187 keV
Average light collection time: 37.2923 ns
Number of PMT hits (photoelectron equivalent): 19
Event summary in file gamma_1000.out
---> End of event: 960
---> Begin of event: 970
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 970
---> Begin of event: 980
Primary Energy: 60 keV
Total energy in LXe: 0 eV
---> End of event: 980
---> Begin of event: 990
Primary Energy: 60 keV
First hit in LXe: gamma
Number of hits in LXe: 67
Total energy in LXe: 60 keV
Average light collection time: 50.4536 ns
Number of PMT hits (photoelectron equivalent): 79
Event summary in file gamma_1000.out
---> End of event: 990
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