Import Geant4 11.2.0 source tree

This commit is contained in:
Gabriele Cosmo
2023-12-08 10:43:34 +01:00
parent dd1f179cda
commit 860a2b92bf
3962 changed files with 139318 additions and 164259 deletions
@@ -11,7 +11,7 @@ Environment variable "G4FORCE_RUN_MANAGER_TYPE" enabled with value == Serial. Fo
**************************************************************
Geant4 version Name: geant4-11-01-ref-06 (30-June-2023)
Geant4 version Name: geant4-11-02-ref-00 (8-December-2023)
Copyright : Geant4 Collaboration
References : NIM A 506 (2003), 250-303
: IEEE-TNS 53 (2006), 270-278
@@ -49,6 +49,10 @@ Registered graphics systems are:
TOOLSSG_XT_ZB (TSG_XT_ZB, TSGXtZB)
TOOLSSG_QT_GLES (TSG_QT_GLES, TSGQt, TSG)
TOOLSSG_QT_ZB (TSG_QT_ZB, TSGQtZB)
Default graphics system is: TSG_OFFSCREEN (based on batch session).
Default window size hint is: 600x600-0+0 (based on G4VisManager initialisation).
Note: Parameters specified on the command line will override these defaults.
Use "vis/open" without parameters to get these defaults.
Registering model factories...
@@ -81,187 +85,6 @@ End of Run User Vis Actions: none
Some /vis commands (optionally) take a string to specify colour.
"/vis/list" to see available colours.
Checking overlaps for volume Detector:99 (G4Tubs) ... OK!
Checking overlaps for volume Layer:0 (G4Tubs) ... OK!
Checking overlaps for volume Layer:1 (G4Tubs) ... OK!
Checking overlaps for volume Layer:2 (G4Tubs) ... OK!
Checking overlaps for volume Layer:3 (G4Tubs) ... OK!
Checking overlaps for volume Layer:4 (G4Tubs) ... OK!
Checking overlaps for volume Layer:5 (G4Tubs) ... OK!
Checking overlaps for volume Layer:6 (G4Tubs) ... OK!
Checking overlaps for volume Layer:7 (G4Tubs) ... OK!
Checking overlaps for volume Layer:8 (G4Tubs) ... OK!
Checking overlaps for volume Layer:9 (G4Tubs) ... OK!
Checking overlaps for volume Layer:10 (G4Tubs) ... OK!
Checking overlaps for volume Layer:11 (G4Tubs) ... OK!
Checking overlaps for volume Layer:12 (G4Tubs) ... OK!
Checking overlaps for volume Layer:13 (G4Tubs) ... OK!
Checking overlaps for volume Layer:14 (G4Tubs) ... OK!
Checking overlaps for volume Layer:15 (G4Tubs) ... OK!
Checking overlaps for volume Layer:16 (G4Tubs) ... OK!
Checking overlaps for volume Layer:17 (G4Tubs) ... OK!
Checking overlaps for volume Layer:18 (G4Tubs) ... OK!
Checking overlaps for volume Layer:19 (G4Tubs) ... OK!
Checking overlaps for volume Layer:20 (G4Tubs) ... OK!
Checking overlaps for volume Layer:21 (G4Tubs) ... OK!
Checking overlaps for volume Layer:22 (G4Tubs) ... OK!
Checking overlaps for volume Layer:23 (G4Tubs) ... OK!
Checking overlaps for volume Layer:24 (G4Tubs) ... OK!
Checking overlaps for volume Layer:25 (G4Tubs) ... OK!
Checking overlaps for volume Layer:26 (G4Tubs) ... OK!
Checking overlaps for volume Layer:27 (G4Tubs) ... OK!
Checking overlaps for volume Layer:28 (G4Tubs) ... OK!
Checking overlaps for volume Layer:29 (G4Tubs) ... OK!
Checking overlaps for volume Layer:30 (G4Tubs) ... OK!
Checking overlaps for volume Layer:31 (G4Tubs) ... OK!
Checking overlaps for volume Layer:32 (G4Tubs) ... OK!
Checking overlaps for volume Layer:33 (G4Tubs) ... OK!
Checking overlaps for volume Layer:34 (G4Tubs) ... OK!
Checking overlaps for volume Layer:35 (G4Tubs) ... OK!
Checking overlaps for volume Layer:36 (G4Tubs) ... OK!
Checking overlaps for volume Layer:37 (G4Tubs) ... OK!
Checking overlaps for volume Layer:38 (G4Tubs) ... OK!
Checking overlaps for volume Layer:39 (G4Tubs) ... OK!
Checking overlaps for volume Layer:40 (G4Tubs) ... OK!
Checking overlaps for volume Layer:41 (G4Tubs) ... OK!
Checking overlaps for volume Layer:42 (G4Tubs) ... OK!
Checking overlaps for volume Layer:43 (G4Tubs) ... OK!
Checking overlaps for volume Layer:44 (G4Tubs) ... OK!
Checking overlaps for volume Layer:45 (G4Tubs) ... OK!
Checking overlaps for volume Layer:46 (G4Tubs) ... OK!
Checking overlaps for volume Layer:47 (G4Tubs) ... OK!
Checking overlaps for volume Layer:48 (G4Tubs) ... OK!
Checking overlaps for volume Layer:49 (G4Tubs) ... OK!
Checking overlaps for volume Layer:50 (G4Tubs) ... OK!
Checking overlaps for volume Layer:51 (G4Tubs) ... OK!
Checking overlaps for volume Layer:52 (G4Tubs) ... OK!
Checking overlaps for volume Layer:53 (G4Tubs) ... OK!
Checking overlaps for volume Layer:54 (G4Tubs) ... OK!
Checking overlaps for volume Layer:55 (G4Tubs) ... OK!
Checking overlaps for volume Layer:56 (G4Tubs) ... OK!
Checking overlaps for volume Layer:57 (G4Tubs) ... OK!
Checking overlaps for volume Layer:58 (G4Tubs) ... OK!
Checking overlaps for volume Layer:59 (G4Tubs) ... OK!
Checking overlaps for volume Layer:60 (G4Tubs) ... OK!
Checking overlaps for volume Layer:61 (G4Tubs) ... OK!
Checking overlaps for volume Layer:62 (G4Tubs) ... OK!
Checking overlaps for volume Layer:63 (G4Tubs) ... OK!
Checking overlaps for volume Layer:64 (G4Tubs) ... OK!
Checking overlaps for volume Layer:65 (G4Tubs) ... OK!
Checking overlaps for volume Layer:66 (G4Tubs) ... OK!
Checking overlaps for volume Layer:67 (G4Tubs) ... OK!
Checking overlaps for volume Layer:68 (G4Tubs) ... OK!
Checking overlaps for volume Layer:69 (G4Tubs) ... OK!
Checking overlaps for volume Layer:70 (G4Tubs) ... OK!
Checking overlaps for volume Layer:71 (G4Tubs) ... OK!
Checking overlaps for volume Layer:72 (G4Tubs) ... OK!
Checking overlaps for volume Layer:73 (G4Tubs) ... OK!
Checking overlaps for volume Layer:74 (G4Tubs) ... OK!
Checking overlaps for volume Layer:75 (G4Tubs) ... OK!
Checking overlaps for volume Layer:76 (G4Tubs) ... OK!
Checking overlaps for volume Layer:77 (G4Tubs) ... OK!
Checking overlaps for volume Layer:78 (G4Tubs) ... OK!
Checking overlaps for volume Layer:79 (G4Tubs) ... OK!
Checking overlaps for volume Layer:80 (G4Tubs) ... OK!
Checking overlaps for volume Layer:81 (G4Tubs) ... OK!
Checking overlaps for volume Layer:82 (G4Tubs) ... OK!
Checking overlaps for volume Layer:83 (G4Tubs) ... OK!
Checking overlaps for volume Layer:84 (G4Tubs) ... OK!
Checking overlaps for volume Layer:85 (G4Tubs) ... OK!
Checking overlaps for volume Layer:86 (G4Tubs) ... OK!
Checking overlaps for volume Layer:87 (G4Tubs) ... OK!
Checking overlaps for volume Layer:88 (G4Tubs) ... OK!
Checking overlaps for volume Layer:89 (G4Tubs) ... OK!
Checking overlaps for volume Layer:90 (G4Tubs) ... OK!
Checking overlaps for volume Layer:91 (G4Tubs) ... OK!
Checking overlaps for volume Layer:92 (G4Tubs) ... OK!
Checking overlaps for volume Layer:93 (G4Tubs) ... OK!
Checking overlaps for volume Layer:94 (G4Tubs) ... OK!
Checking overlaps for volume Layer:95 (G4Tubs) ... OK!
Checking overlaps for volume Layer:96 (G4Tubs) ... OK!
Checking overlaps for volume Layer:97 (G4Tubs) ... OK!
Checking overlaps for volume Layer:98 (G4Tubs) ... OK!
Checking overlaps for volume Layer:99 (G4Tubs) ... OK!
Checking overlaps for volume Layer:100 (G4Tubs) ... OK!
Checking overlaps for volume Layer:101 (G4Tubs) ... OK!
Checking overlaps for volume Layer:102 (G4Tubs) ... OK!
Checking overlaps for volume Layer:103 (G4Tubs) ... OK!
Checking overlaps for volume Layer:104 (G4Tubs) ... OK!
Checking overlaps for volume Layer:105 (G4Tubs) ... OK!
Checking overlaps for volume Layer:106 (G4Tubs) ... OK!
Checking overlaps for volume Layer:107 (G4Tubs) ... OK!
Checking overlaps for volume Layer:108 (G4Tubs) ... OK!
Checking overlaps for volume Layer:109 (G4Tubs) ... OK!
Checking overlaps for volume Layer:110 (G4Tubs) ... OK!
Checking overlaps for volume Layer:111 (G4Tubs) ... OK!
Checking overlaps for volume Layer:112 (G4Tubs) ... OK!
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Checking overlaps for volume Layer:116 (G4Tubs) ... OK!
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Checking overlaps for volume Layer:118 (G4Tubs) ... OK!
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Checking overlaps for volume Layer:120 (G4Tubs) ... OK!
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Checking overlaps for volume Layer:129 (G4Tubs) ... OK!
Checking overlaps for volume Layer:130 (G4Tubs) ... OK!
Checking overlaps for volume Layer:131 (G4Tubs) ... OK!
Checking overlaps for volume Layer:132 (G4Tubs) ... OK!
Checking overlaps for volume Layer:133 (G4Tubs) ... OK!
Checking overlaps for volume Layer:134 (G4Tubs) ... OK!
Checking overlaps for volume Layer:135 (G4Tubs) ... OK!
Checking overlaps for volume Layer:136 (G4Tubs) ... OK!
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Checking overlaps for volume Layer:138 (G4Tubs) ... OK!
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Checking overlaps for volume Layer:143 (G4Tubs) ... OK!
Checking overlaps for volume Layer:144 (G4Tubs) ... OK!
Checking overlaps for volume Layer:145 (G4Tubs) ... OK!
Checking overlaps for volume Layer:146 (G4Tubs) ... OK!
Checking overlaps for volume Layer:147 (G4Tubs) ... OK!
Checking overlaps for volume Layer:148 (G4Tubs) ... OK!
Checking overlaps for volume Layer:149 (G4Tubs) ... OK!
Checking overlaps for volume Layer:150 (G4Tubs) ... OK!
Checking overlaps for volume Layer:151 (G4Tubs) ... OK!
Checking overlaps for volume Layer:152 (G4Tubs) ... OK!
Checking overlaps for volume Layer:153 (G4Tubs) ... OK!
Checking overlaps for volume Layer:154 (G4Tubs) ... OK!
Checking overlaps for volume Layer:155 (G4Tubs) ... OK!
Checking overlaps for volume Layer:156 (G4Tubs) ... OK!
Checking overlaps for volume Layer:157 (G4Tubs) ... OK!
Checking overlaps for volume Layer:158 (G4Tubs) ... OK!
Checking overlaps for volume Layer:159 (G4Tubs) ... OK!
Checking overlaps for volume Layer:160 (G4Tubs) ... OK!
Checking overlaps for volume Layer:161 (G4Tubs) ... OK!
Checking overlaps for volume Layer:162 (G4Tubs) ... OK!
Checking overlaps for volume Layer:163 (G4Tubs) ... OK!
Checking overlaps for volume Layer:164 (G4Tubs) ... OK!
Checking overlaps for volume Layer:165 (G4Tubs) ... OK!
Checking overlaps for volume Layer:166 (G4Tubs) ... OK!
Checking overlaps for volume Layer:167 (G4Tubs) ... OK!
Checking overlaps for volume Layer:168 (G4Tubs) ... OK!
Checking overlaps for volume Layer:169 (G4Tubs) ... OK!
Checking overlaps for volume Layer:170 (G4Tubs) ... OK!
Checking overlaps for volume Layer:171 (G4Tubs) ... OK!
Checking overlaps for volume Layer:172 (G4Tubs) ... OK!
Checking overlaps for volume Layer:173 (G4Tubs) ... OK!
Checking overlaps for volume Layer:174 (G4Tubs) ... OK!
Checking overlaps for volume Layer:175 (G4Tubs) ... OK!
Checking overlaps for volume Layer:176 (G4Tubs) ... OK!
Checking overlaps for volume Layer:177 (G4Tubs) ... OK!
Checking overlaps for volume Layer:178 (G4Tubs) ... OK!
Checking overlaps for volume Layer:179 (G4Tubs) ... OK!
------------------------------------------------------
--- Detector length: 2 m
@@ -272,431 +95,58 @@ Checking overlaps for volume Layer:179 (G4Tubs) ... OK!
--- 2nd layer: 300 um of active G4_Si
-----------------------------------------------------
hInelastic FTFP_BERT : threshold between BERT and FTFP is over the interval
for pions : 3 to 6 GeV
for kaons : 3 to 6 GeV
for proton : 3 to 6 GeV
for neutron : 3 to 6 GeV
------------------------------------------------------
Readout geometry with physics layout is set in parallel geometry:
Cylindrical detector is divided along radius (layers), phi (slices), and z (rows).
Number of layers is determined by number of layers set in detector construction.
- Number of layers: 90
------- Number of slices: 320
- Number of rows: 100
Readout will collect energy for full simulation.
------- Therefore thickness is only a thickness of sensitive absorbers = 300 um
-----------------------------------------------------
Checking overlaps for volume Detector:9999 (G4Tubs) ... OK!
------------------------------------------------------
Readout geometry with physics layout is set in parallel geometry:
Cylindrical detector is divided along radius (layers), phi (slices), and z (rows).
Number of layers is determined by number of layers set in detector construction.
- Number of layers: 90
------- Number of slices: 320
- Number of rows: 100
Readout will collect energy for full simulation.
------- Therefore thickness is only a thickness of sensitive absorbers = 300 um
-----------------------------------------------------
------------------------------------------------------
Readout geometry with physics layout is set in parallel geometry:
Cylindrical detector is divided along radius (layers), phi (slices), and z (rows).
Number of layers is determined by number of layers set in detector construction.
- Number of layers: 90
------- Number of slices: 320
- Number of rows: 100
Readout will collect energy from fast simulation.
------- Thickness is a sum of all absorbers = 1.7 mm
-----------------------------------------------------
Checking overlaps for volume Detector:9999 (G4Tubs) ... OK!
------------------------------------------------------
Readout geometry with physics layout is set in parallel geometry:
Cylindrical detector is divided along radius (layers), phi (slices), and z (rows).
Number of layers is determined by number of layers set in detector construction.
- Number of layers: 90
------- Number of slices: 320
- Number of rows: 100
Readout will collect energy from fast simulation.
------- Thickness is a sum of all absorbers = 1.7 mm
-----------------------------------------------------
--- G4CoupledTransportation is used
### Adding tracking cuts for neutron TimeCut(ns)= 10000 KinEnergyCut(MeV)= 0
e+ : fastSimProcess_massGeom[geom:World]
e- : fastSimProcess_massGeom[geom:World]
gamma : fastSimProcess_massGeom[geom:World]
Model defineMesh activated.
Model inferenceModel not found.
====================================================================
HADRONIC PROCESSES SUMMARY (verbose level 1)
---------------------------------------------------
Hadronic Processes for neutron
Process: hadElastic
Model: hElasticCHIPS: 0 eV ---> 100 TeV
Cr_sctns: G4NeutronElasticXS: 0 eV ---> 100 TeV
Process: neutronInelastic
Model: FTFP: 3 GeV ---> 100 TeV
Model: BertiniCascade: 0 eV ---> 6 GeV
Cr_sctns: G4NeutronInelasticXS: 0 eV ---> 100 TeV
Process: nCapture
Model: nRadCapture: 0 eV ---> 100 TeV
Cr_sctns: G4NeutronCaptureXS: 0 eV ---> 100 TeV
Process: nKiller
---------------------------------------------------
Hadronic Processes for B-
Process: hadElastic
Model: hElasticLHEP: 0 eV ---> 100 TeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
Process: B-Inelastic
Model: FTFP: 0 eV ---> 100 TeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
---------------------------------------------------
Hadronic Processes for D-
Process: hadElastic
Model: hElasticLHEP: 0 eV ---> 100 TeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
Process: D-Inelastic
Model: FTFP: 0 eV ---> 100 TeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
---------------------------------------------------
Hadronic Processes for GenericIon
Process: ionInelastic
Model: Binary Light Ion Cascade: 0 eV /n ---> 6 GeV/n
Model: FTFP: 3 GeV/n ---> 100 TeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 25.6 PeV
---------------------------------------------------
Hadronic Processes for He3
Process: hadElastic
Model: hElasticLHEP: 0 eV /n ---> 100 TeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 25.6 PeV
Process: He3Inelastic
Model: Binary Light Ion Cascade: 0 eV /n ---> 6 GeV/n
Model: FTFP: 3 GeV/n ---> 100 TeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 25.6 PeV
---------------------------------------------------
Hadronic Processes for alpha
Process: hadElastic
Model: hElasticLHEP: 0 eV /n ---> 100 TeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 25.6 PeV
Process: alphaInelastic
Model: Binary Light Ion Cascade: 0 eV /n ---> 6 GeV/n
Model: FTFP: 3 GeV/n ---> 100 TeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 25.6 PeV
---------------------------------------------------
Hadronic Processes for anti_He3
Process: hadElastic
Model: hElasticLHEP: 0 eV /n ---> 100.1 MeV/n
Model: AntiAElastic: 100 MeV/n ---> 100 TeV/n
Cr_sctns: AntiAGlauber: 0 eV ---> 25.6 PeV
Process: anti_He3Inelastic
Model: FTFP: 0 eV /n ---> 100 TeV/n
Cr_sctns: AntiAGlauber: 0 eV ---> 25.6 PeV
Process: hFritiofCaptureAtRest
---------------------------------------------------
Hadronic Processes for anti_alpha
Process: hadElastic
Model: hElasticLHEP: 0 eV /n ---> 100.1 MeV/n
Model: AntiAElastic: 100 MeV/n ---> 100 TeV/n
Cr_sctns: AntiAGlauber: 0 eV ---> 25.6 PeV
Process: anti_alphaInelastic
Model: FTFP: 0 eV /n ---> 100 TeV/n
Cr_sctns: AntiAGlauber: 0 eV ---> 25.6 PeV
Process: hFritiofCaptureAtRest
---------------------------------------------------
Hadronic Processes for anti_deuteron
Process: hadElastic
Model: hElasticLHEP: 0 eV /n ---> 100.1 MeV/n
Model: AntiAElastic: 100 MeV/n ---> 100 TeV/n
Cr_sctns: AntiAGlauber: 0 eV ---> 25.6 PeV
Process: anti_deuteronInelastic
Model: FTFP: 0 eV /n ---> 100 TeV/n
Cr_sctns: AntiAGlauber: 0 eV ---> 25.6 PeV
Process: hFritiofCaptureAtRest
---------------------------------------------------
Hadronic Processes for anti_hypertriton
Process: hFritiofCaptureAtRest
---------------------------------------------------
Hadronic Processes for anti_lambda
Process: hadElastic
Model: hElasticLHEP: 0 eV ---> 100 TeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
Process: anti_lambdaInelastic
Model: FTFP: 0 eV ---> 100 TeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
Process: hFritiofCaptureAtRest
---------------------------------------------------
Hadronic Processes for anti_neutron
Process: hadElastic
Model: hElasticLHEP: 0 eV ---> 100.1 MeV
Model: AntiAElastic: 100 MeV ---> 100 TeV
Cr_sctns: AntiAGlauber: 0 eV ---> 25.6 PeV
Process: anti_neutronInelastic
Model: FTFP: 0 eV ---> 100 TeV
Cr_sctns: AntiAGlauber: 0 eV ---> 25.6 PeV
Process: hFritiofCaptureAtRest
---------------------------------------------------
Hadronic Processes for anti_proton
Process: hadElastic
Model: hElasticLHEP: 0 eV ---> 100.1 MeV
Model: AntiAElastic: 100 MeV ---> 100 TeV
Cr_sctns: AntiAGlauber: 0 eV ---> 25.6 PeV
Process: anti_protonInelastic
Model: FTFP: 0 eV ---> 100 TeV
Cr_sctns: AntiAGlauber: 0 eV ---> 25.6 PeV
Process: hFritiofCaptureAtRest
---------------------------------------------------
Hadronic Processes for anti_triton
Process: hadElastic
Model: hElasticLHEP: 0 eV /n ---> 100.1 MeV/n
Model: AntiAElastic: 100 MeV/n ---> 100 TeV/n
Cr_sctns: AntiAGlauber: 0 eV ---> 25.6 PeV
Process: anti_tritonInelastic
Model: FTFP: 0 eV /n ---> 100 TeV/n
Cr_sctns: AntiAGlauber: 0 eV ---> 25.6 PeV
Process: hFritiofCaptureAtRest
---------------------------------------------------
Hadronic Processes for deuteron
Process: hadElastic
Model: hElasticLHEP: 0 eV /n ---> 100 TeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 25.6 PeV
Process: dInelastic
Model: Binary Light Ion Cascade: 0 eV /n ---> 6 GeV/n
Model: FTFP: 3 GeV/n ---> 100 TeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 25.6 PeV
---------------------------------------------------
Hadronic Processes for e+
Process: positronNuclear
Model: G4ElectroVDNuclearModel: 0 eV ---> 1 PeV
Cr_sctns: ElectroNuclearXS: 0 eV ---> 100 TeV
---------------------------------------------------
Hadronic Processes for e-
Process: electronNuclear
Model: G4ElectroVDNuclearModel: 0 eV ---> 1 PeV
Cr_sctns: ElectroNuclearXS: 0 eV ---> 100 TeV
---------------------------------------------------
Hadronic Processes for gamma
Process: photonNuclear
Model: GammaNPreco: 0 eV ---> 200 MeV
Model: BertiniCascade: 199 MeV ---> 6 GeV
Model: TheoFSGenerator: 3 GeV ---> 100 TeV
Cr_sctns: GammaNuclearXS: 0 eV ---> 100 TeV
---------------------------------------------------
Hadronic Processes for kaon+
Process: hadElastic
Model: hElasticLHEP: 0 eV ---> 100 TeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
Process: kaon+Inelastic
Model: FTFP: 3 GeV ---> 100 TeV
Model: BertiniCascade: 0 eV ---> 6 GeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
---------------------------------------------------
Hadronic Processes for kaon-
Process: hadElastic
Model: hElasticLHEP: 0 eV ---> 100 TeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
Process: kaon-Inelastic
Model: FTFP: 3 GeV ---> 100 TeV
Model: BertiniCascade: 0 eV ---> 6 GeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
Process: hBertiniCaptureAtRest
---------------------------------------------------
Hadronic Processes for lambda
Process: hadElastic
Model: hElasticLHEP: 0 eV ---> 100 TeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
Process: lambdaInelastic
Model: FTFP: 3 GeV ---> 100 TeV
Model: BertiniCascade: 0 eV ---> 6 GeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
---------------------------------------------------
Hadronic Processes for mu+
Process: muonNuclear
Model: G4MuonVDNuclearModel: 0 eV ---> 1 PeV
Cr_sctns: KokoulinMuonNuclearXS: 0 eV ---> 100 TeV
---------------------------------------------------
Hadronic Processes for mu-
Process: muonNuclear
Model: G4MuonVDNuclearModel: 0 eV ---> 1 PeV
Cr_sctns: KokoulinMuonNuclearXS: 0 eV ---> 100 TeV
Process: muMinusCaptureAtRest
---------------------------------------------------
Hadronic Processes for pi+
Process: hadElastic
Model: hElasticGlauber: 0 eV ---> 100 TeV
Cr_sctns: BarashenkovGlauberGribov: 0 eV ---> 100 TeV
Process: pi+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: pi-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: protonInelastic
Model: FTFP: 3 GeV ---> 100 TeV
Model: BertiniCascade: 0 eV ---> 6 GeV
Cr_sctns: BarashenkovGlauberGribov: 0 eV ---> 100 TeV
---------------------------------------------------
Hadronic Processes for sigma-
Process: hadElastic
Model: hElasticLHEP: 0 eV ---> 100 TeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
Process: sigma-Inelastic
Model: FTFP: 3 GeV ---> 100 TeV
Model: BertiniCascade: 0 eV ---> 6 GeV
Cr_sctns: Glauber-Gribov: 0 eV ---> 100 TeV
Process: hBertiniCaptureAtRest
---------------------------------------------------
Hadronic Processes for triton
Process: hadElastic
Model: hElasticLHEP: 0 eV /n ---> 100 TeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 25.6 PeV
Process: tInelastic
Model: Binary Light Ion Cascade: 0 eV /n ---> 6 GeV/n
Model: FTFP: 3 GeV/n ---> 100 TeV/n
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 25.6 PeV
================================================================
=======================================================================
====== Geant4 Native Pre-compound Model Parameters ========
=======================================================================
Type of pre-compound inverse x-section 3
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 1
Time limit for long lived isomeres 1 ns
Isomer production flag 1
Internal e- conversion flag 1
Store e- internal conversion data 0
Correlated gamma emission flag 0
Max 2J for sampling of angular correlations 10
=======================================================================
G4VisManager: Using G4TrajectoryDrawByCharge as fallback trajectory model.
See commands in /vis/modeling/trajectories/ for other options.
@@ -708,8 +158,12 @@ Setting was ignored.
*** This is just a warning message. ***
-------- WWWW -------- G4Exception-END --------- WWWW -------
There are 14 h1 histograms
List them with "/analysis/list".
View them with "/vis/plot" or "/vis/reviewPlots".
There are histograms that can be viewed with visualization:
22 h1 histograms(s)
List them with "/analysis/list".
View them immediately with "/vis/plot" or "/vis/reviewPlots".
But...there are no entries. To make your histograms available for
plotting in this UI session, use CloseFile(false) in your
EndOfRunAction and Reset() in your BeginOfRunAction.
Graphics systems deleted.
Visualization Manager deleting...