Import Geant4 10.6.0 source tree
This commit is contained in:
@@ -14,7 +14,7 @@ examples/extended/optical/LXe and wls
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Define Random Number Engine and initial seed
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\section ExampleOpNovice_s2 G4VUserPhysicsList
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\section ExampleOpNovice_s2 G4OpticalPhysics
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- Define particles; including - *** G4OpticalPhoton ***
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- Define processes; including
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@@ -24,7 +24,7 @@ examples/extended/optical/LXe and wls
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- *** G4OpRayleigh ***
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- *** G4OpBoundaryProcess ***
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A messenger command allows to define interactivly the
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A messenger command allows to define interactively the
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verbose level and the maximum number of Cerenkov photons per step
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(see for instance OpNovice.in)
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@@ -41,7 +41,7 @@ examples/extended/optical/LXe and wls
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Use G4ParticleGun to shoot a charge particle into a Cerenkov radiator
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A messenger command allows to define interactivly the polarization of an
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A messenger command allows to define interactively the polarization of an
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primary optical photon (see for instance optPhoton.mac)
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\section ExampleOpNovice_s5 G4UserRunAction
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@@ -66,10 +66,6 @@ examples/extended/optical/LXe and wls
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\section ExampleOpNovice_s8 How to start
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- compile and link to generate an executable
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\verbatim
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% cd OpNovice
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% gmake
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\endverbatim
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This example handles the program arguments in a new way.
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It can be run with the following optional arguments:
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@@ -14,6 +14,10 @@ track of all tags.
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* Reverse chronological order (last date on top), please *
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----------------------------------------------------------
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October 29, 2019 D. Sawkey (OpNovice-V10-05-00)
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- Use G4OpticalPhysics and G4SteppingVerbose
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- remove unused surface parameters
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July 31, 2018 I. Hrivnacova (OpNovice-V10-04-02)
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- Macro review:
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- Added test for /OpNovice/phys/cerenkovMaxPhotons command at the end
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@@ -53,9 +53,11 @@
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#include "G4UImanager.hh"
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#include "OpNovicePhysicsList.hh"
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#include "OpNoviceDetectorConstruction.hh"
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#include "FTFP_BERT.hh"
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#include "G4OpticalPhysics.hh"
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#include "G4EmStandardPhysics_option4.hh"
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#include "OpNoviceDetectorConstruction.hh"
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#include "OpNoviceActionInitialization.hh"
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#include "G4VisExecutive.hh"
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@@ -132,23 +134,21 @@ int main(int argc,char** argv)
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// Detector construction
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runManager-> SetUserInitialization(new OpNoviceDetectorConstruction());
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// Physics list
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runManager-> SetUserInitialization(new OpNovicePhysicsList());
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G4VModularPhysicsList* physicsList = new FTFP_BERT;
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physicsList->ReplacePhysics(new G4EmStandardPhysics_option4());
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G4OpticalPhysics* opticalPhysics = new G4OpticalPhysics();
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physicsList->RegisterPhysics(opticalPhysics);
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runManager-> SetUserInitialization(physicsList);
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// User action initialization
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runManager->SetUserInitialization(new OpNoviceActionInitialization());
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// Initialize G4 kernel
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//
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runManager->Initialize();
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// Initialize visualization
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//
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G4VisManager* visManager = new G4VisExecutive;
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// G4VisExecutive can take a verbosity argument - see /vis/verbose guidance.
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// G4VisManager* visManager = new G4VisExecutive("Quiet");
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G4VisManager* visManager = new G4VisExecutive("Quiet");
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visManager->Initialize();
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// Get the pointer to the User Interface manager
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//
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G4UImanager* UImanager = G4UImanager::GetUIpointer();
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if ( macro.size() ) {
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@@ -1,14 +1,15 @@
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/control/verbose 2
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/tracking/verbose 0
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#
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/process/optical/verbose 0
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/run/initialize
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#
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/gun/particle e+
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/gun/energy 500 keV
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#
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/OpNovice/phys/verbose 0
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#
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/run/beamOn 1
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#
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/OpNovice/phys/cerenkovMaxPhotons 15 # default: 20
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/process/optical/cerenkov/setMaxPhotons 15
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#
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/run/beamOn 1
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@@ -1,6 +1,10 @@
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############################################
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!!! WARNING - FPE detection is activated !!!
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############################################
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**************************************************************
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Geant4 version Name: geant4-10-05-ref-06 (30-June-2019)
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Geant4 version Name: geant4-10-06-ref-00 (6-December-2019)
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Copyright : Geant4 Collaboration
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References : NIM A 506 (2003), 250-303
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: IEEE-TNS 53 (2006), 270-278
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@@ -8,6 +12,13 @@
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WWW : http://geant4.org/
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**************************************************************
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<<< Geant4 Physics List simulation engine: FTFP_BERT
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G4VModularPhysicsList::ReplacePhysics: G4EmStandardwith type : 2 is replaces with G4EmStandard_opt4
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/tracking/verbose 0
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#
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/process/optical/verbose 0
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/run/initialize
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Water G4MaterialPropertiesTable
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0: RINDEX
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2.034e-06 1.3435
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@@ -336,22 +347,6 @@ Reflectivity LUT DAVIS - data file: /cvmfs/geant4.cern.ch/share/data/RealSurface
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-----------------
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1
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Water Surface G4MaterialPropertiesTable
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0: RINDEX
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2.034e-06 1.35
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4.136e-06 1.4
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6: SPECULARLOBECONSTANT
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2.034e-06 0.3
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4.136e-06 0.3
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7: SPECULARSPIKECONSTANT
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2.034e-06 0.2
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4.136e-06 0.2
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8: BACKSCATTERCONSTANT
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2.034e-06 0.2
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4.136e-06 0.2
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9: GROUPVEL
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2.034e-06 211.055
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4.136e-06 203.878
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Air Surface G4MaterialPropertiesTable
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1: REFLECTIVITY
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2.034e-06 0.3
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@@ -359,313 +354,723 @@ Air Surface G4MaterialPropertiesTable
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4: EFFICIENCY
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2.034e-06 0.8
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4.136e-06 1
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FTFP_BERT : new threshold between BERT and FTFP is over the interval
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for pions : 3 to 6 GeV
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for kaons : 3 to 6 GeV
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for proton : 3 to 6 GeV
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for neutron : 3 to 6 GeV
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### Adding tracking cuts for neutron TimeCut(ns)= 10000 KinEnergyCut(MeV)= 0
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### Birks coefficients used in run time
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Water 0.126 mm/MeV 0.0126 g/cm^2/MeV massFactor= 85.0756 effCharge= 62.0606
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AddDiscreteProcess to OpticalPhoton
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Visualization Manager instantiating with verbosity "warnings (3)"...
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Visualization Manager initialising...
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Registering graphics systems...
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You have successfully registered the following graphics systems.
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Current available graphics systems are:
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ASCIITree (ATree)
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DAWNFILE (DAWNFILE)
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G4HepRep (HepRepXML)
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G4HepRepFile (HepRepFile)
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RayTracer (RayTracer)
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VRML1FILE (VRML1FILE)
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VRML2FILE (VRML2FILE)
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gMocrenFile (gMocrenFile)
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OpenGLImmediateXm (OGLIXm, OGLI)
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OpenGLStoredXm (OGLSXm, OGL, OGLS)
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OpenGLImmediateX (OGLIX, OGLIXm_FALLBACK)
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OpenGLStoredX (OGLSX, OGLSXm_FALLBACK)
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RayTracerX (RayTracerX)
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Registering model factories...
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You have successfully registered the following model factories.
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Registered model factories:
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generic
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drawByAttribute
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drawByCharge
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drawByOriginVolume
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drawByParticleID
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drawByEncounteredVolume
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Registered filter factories:
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attributeFilter
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chargeFilter
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originVolumeFilter
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particleFilter
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encounteredVolumeFilter
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You have successfully registered the following user vis actions.
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Run Duration User Vis Actions: none
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End of Event User Vis Actions: none
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End of Run User Vis Actions: none
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Some /vis commands (optionally) take a string to specify colour.
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"/vis/list" to see available colours.
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/tracking/verbose 0
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#
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/gun/particle e+
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/gun/energy 500 keV
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#
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/OpNovice/phys/verbose 0
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#
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/run/beamOn 1
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conv: for gamma SubType=14 BuildTable=1
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Lambda table from 1.022 MeV to 100 TeV, 18 bins/decade, spline: 1
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===== EM models for the G4Region DefaultRegionForTheWorld ======
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BetheHeitler : Emin= 0 eV Emax= 80 GeV ModifiedTsai
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BetheHeitlerLPM : Emin= 80 GeV Emax= 100 TeV ModifiedTsai
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compt: for gamma SubType=13 BuildTable=1
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Lambda table from 100 eV to 1 MeV, 7 bins/decade, spline: 1
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LambdaPrime table from 1 MeV to 100 TeV in 56 bins
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===== EM models for the G4Region DefaultRegionForTheWorld ======
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Klein-Nishina : Emin= 0 eV Emax= 100 TeV
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### === Deexcitation model UAtomDeexcitation is activated for 1 region:
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DefaultRegionForTheWorld 1 0 0
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### === Ignore cuts flag: 0
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phot: for gamma SubType=12 BuildTable=0
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LambdaPrime table from 200 keV to 100 TeV in 61 bins
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LambdaPrime table from 200 keV to 100 TeV in 174 bins
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===== EM models for the G4Region DefaultRegionForTheWorld ======
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PhotoElectric : Emin= 0 eV Emax= 100 TeV SauterGavrila
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LivermorePhElectric : Emin= 0 eV Emax= 100 TeV SauterGavrila Fluo
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compt: for gamma SubType=13 BuildTable=1
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Lambda table from 100 eV to 1 MeV, 20 bins/decade, spline: 1
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LambdaPrime table from 1 MeV to 100 TeV in 160 bins
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===== EM models for the G4Region DefaultRegionForTheWorld ======
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LowEPComptonModel : Emin= 0 eV Emax= 20 MeV Fluo
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KleinNishina : Emin= 20 MeV Emax= 100 TeV Fluo
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conv: for gamma SubType=14 BuildTable=1
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Lambda table from 1.022 MeV to 100 TeV, 20 bins/decade, spline: 1
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===== EM models for the G4Region DefaultRegionForTheWorld ======
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BetheHeitler5D : Emin= 0 eV Emax= 100 TeV ModifiedTsai
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Rayl: for gamma SubType=11 BuildTable=1
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Lambda table from 100 eV to 100 keV, 20 bins/decade, spline: 0
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LambdaPrime table from 100 keV to 100 TeV in 180 bins
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===== EM models for the G4Region DefaultRegionForTheWorld ======
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LivermoreRayleigh : Emin= 0 eV Emax= 100 TeV CullenGenerator
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msc: for e- SubType= 10
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RangeFactor= 0.04, stepLimType: 1, latDisp: 1
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RangeFactor= 0.08, stepLimType: 2, latDisp: 1
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===== EM models for the G4Region DefaultRegionForTheWorld ======
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UrbanMsc : Emin= 0 eV Emax= 100 TeV Nbins=84 100 eV - 100 TeV
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GoudsmitSaunderson : Emin= 0 eV Emax= 100 MeV Nbins=120 100 eV - 100 MeV
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WentzelVIUni : Emin= 100 MeV Emax= 100 TeV Nbins=120 100 MeV - 100 TeV
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eIoni: for e- SubType=2
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dE/dx and range tables from 100 eV to 100 TeV in 84 bins
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Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
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StepFunction=(0.2, 1 mm), integ: 1, fluct: 1, linLossLim= 0.01
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dE/dx and range tables from 100 eV to 100 TeV in 240 bins
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Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
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StepFunction=(0.2, 0.01 mm), integ: 1, fluct: 1, linLossLim= 0.01
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===== EM models for the G4Region DefaultRegionForTheWorld ======
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MollerBhabha : Emin= 0 eV Emax= 100 TeV
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LowEnergyIoni : Emin= 0 eV Emax= 100 keV deltaVI
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MollerBhabha : Emin= 100 keV Emax= 100 TeV deltaVI
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eBrem: for e- SubType=3
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dE/dx and range tables from 100 eV to 100 TeV in 84 bins
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Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
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dE/dx and range tables from 100 eV to 100 TeV in 240 bins
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Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
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LPM flag: 1 for E > 1 GeV, VertexHighEnergyTh(GeV)= 100000
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===== EM models for the G4Region DefaultRegionForTheWorld ======
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eBremSB : Emin= 0 eV Emax= 1 GeV ModifiedTsai
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eBremLPM : Emin= 1 GeV Emax= 100 TeV ModifiedTsai
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eBremSB : Emin= 0 eV Emax= 1 GeV AngularGen2BS
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eBremLPM : Emin= 1 GeV Emax= 100 TeV AngularGen2BS
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ePairProd: for e- SubType=4
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dE/dx and range tables from 100 eV to 100 TeV in 240 bins
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Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
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Sampling table 25x1001 from 0.1 GeV to 100 TeV
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===== EM models for the G4Region DefaultRegionForTheWorld ======
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ePairProd : Emin= 0 eV Emax= 100 TeV
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CoulombScat: for e-, integral:1 SubType=1 BuildTable=1
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Lambda table from 100 MeV to 100 TeV, 20 bins/decade, spline: 1
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ThetaMin(p) < Theta(degree) < 180 pLimit(GeV^1)= 0.139531
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===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
eCoulombScattering : Emin= 100 MeV Emax= 100 TeV
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msc: for e+ SubType= 10
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RangeFactor= 0.04, stepLimType: 1, latDisp: 1
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RangeFactor= 0.08, stepLimType: 2, latDisp: 1
|
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===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
UrbanMsc : Emin= 0 eV Emax= 100 TeV Nbins=84 100 eV - 100 TeV
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GoudsmitSaunderson : Emin= 0 eV Emax= 100 MeV Nbins=120 100 eV - 100 MeV
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WentzelVIUni : Emin= 100 MeV Emax= 100 TeV Nbins=120 100 MeV - 100 TeV
|
||||
|
||||
eIoni: for e+ SubType=2
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||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
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||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
StepFunction=(0.2, 1 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
StepFunction=(0.2, 0.01 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
MollerBhabha : Emin= 0 eV Emax= 100 TeV
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||||
PenIoni : Emin= 0 eV Emax= 100 keV
|
||||
MollerBhabha : Emin= 100 keV Emax= 100 TeV deltaVI
|
||||
|
||||
eBrem: for e+ SubType=3
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 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 TeV ModifiedTsai
|
||||
eBremSB : Emin= 0 eV Emax= 1 GeV AngularGen2BS
|
||||
eBremLPM : Emin= 1 GeV Emax= 100 TeV AngularGen2BS
|
||||
|
||||
ePairProd: for e+ SubType=4
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
Sampling table 25x1001 from 0.1 GeV to 100 TeV
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
ePairProd : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
annihil: for e+, integral:1 SubType=5 BuildTable=0
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
eplus2gg : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
msc: for proton SubType= 10
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 0
|
||||
CoulombScat: for e+, integral:1 SubType=1 BuildTable=1
|
||||
Lambda table from 100 MeV to 100 TeV, 20 bins/decade, spline: 1
|
||||
ThetaMin(p) < Theta(degree) < 180 pLimit(GeV^1)= 0.139531
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
UrbanMsc : Emin= 0 eV Emax= 100 TeV Nbins=84 100 eV - 100 TeV
|
||||
eCoulombScattering : Emin= 100 MeV Emax= 100 TeV
|
||||
|
||||
msc: for proton SubType= 10
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
WentzelVIUni : Emin= 0 eV Emax= 100 TeV Nbins=240 100 eV - 100 TeV
|
||||
|
||||
hIoni: for proton SubType=2
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
StepFunction=(0.2, 0.1 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
StepFunction=(0.1, 0.02 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
Bragg : Emin= 0 eV Emax= 2 MeV
|
||||
BetheBloch : Emin= 2 MeV Emax= 100 TeV
|
||||
Bragg : Emin= 0 eV Emax= 2 MeV deltaVI
|
||||
BetheBloch : Emin= 2 MeV Emax= 100 TeV deltaVI
|
||||
|
||||
hBrems: for proton SubType=3
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
hBrem : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
hPairProd: for proton SubType=4
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
Sampling table 17x1001 from 7.50618 GeV to 100 TeV
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
hPairProd : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
CoulombScat: for proton, integral:1 SubType=1 BuildTable=1
|
||||
Lambda table from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
ThetaMin(p) < Theta(degree) < 180 pLimit(GeV^1)= 0.139531
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
eCoulombScattering : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
msc: for GenericIon SubType= 10
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 0
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
UrbanMsc : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
hIoni: for GenericIon SubType=2
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
StepFunction=(0.2, 0.1 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
ionIoni: for GenericIon SubType=2
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
StepFunction=(0.1, 0.001 mm), integ: 1, fluct: 1, linLossLim= 0.02
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
Bragg : Emin= 0 eV Emax= 2 MeV
|
||||
BetheBloch : Emin= 2 MeV Emax= 100 TeV
|
||||
ParamICRU73 : Emin= 0 eV Emax= 100 TeV deltaVI
|
||||
|
||||
nuclearStopping: for GenericIon SubType=8 BuildTable=0
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
ICRU49NucStopping : Emin= 0 eV Emax= 1 MeV
|
||||
|
||||
msc: for alpha SubType= 10
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 0
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
UrbanMsc : Emin= 0 eV Emax= 100 TeV Nbins=84 100 eV - 100 TeV
|
||||
UrbanMsc : Emin= 0 eV Emax= 100 TeV Nbins=240 100 eV - 100 TeV
|
||||
|
||||
hIoni: for alpha SubType=2
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
StepFunction=(0.2, 0.1 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
ionIoni: for alpha SubType=2
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
StepFunction=(0.1, 0.02 mm), integ: 1, fluct: 1, linLossLim= 0.02
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
Bragg : Emin= 0 eV Emax=7.9452 MeV
|
||||
BetheBloch : Emin=7.9452 MeV Emax= 100 TeV
|
||||
BraggIon : Emin= 0 eV Emax=7.9452 MeV deltaVI
|
||||
BetheBloch : Emin=7.9452 MeV Emax= 100 TeV deltaVI
|
||||
|
||||
nuclearStopping: for alpha SubType=8 BuildTable=0
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
ICRU49NucStopping : Emin= 0 eV Emax= 1 MeV
|
||||
|
||||
msc: for anti_proton SubType= 10
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 0
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
UrbanMsc : Emin= 0 eV Emax= 100 TeV Nbins=84 100 eV - 100 TeV
|
||||
WentzelVIUni : Emin= 0 eV Emax= 100 TeV Nbins=240 100 eV - 100 TeV
|
||||
|
||||
hIoni: for anti_proton SubType=2
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
StepFunction=(0.2, 0.1 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
StepFunction=(0.1, 0.02 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
ICRU73QO : Emin= 0 eV Emax= 2 MeV
|
||||
BetheBloch : Emin= 2 MeV Emax= 100 TeV
|
||||
ICRU73QO : Emin= 0 eV Emax= 2 MeV deltaVI
|
||||
BetheBloch : Emin= 2 MeV Emax= 100 TeV deltaVI
|
||||
|
||||
hBrems: for anti_proton SubType=3
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
hBrem : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
hPairProd: for anti_proton SubType=4
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
Sampling table 17x1001 from 7.50618 GeV to 100 TeV
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
hPairProd : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
CoulombScat: for anti_proton, integral:1 SubType=1 BuildTable=1
|
||||
Lambda table from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
ThetaMin(p) < Theta(degree) < 180 pLimit(GeV^1)= 0.139531
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
eCoulombScattering : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
msc: for kaon+ SubType= 10
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 0
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
UrbanMsc : Emin= 0 eV Emax= 100 TeV Nbins=84 100 eV - 100 TeV
|
||||
WentzelVIUni : Emin= 0 eV Emax= 100 TeV Nbins=240 100 eV - 100 TeV
|
||||
|
||||
hIoni: for kaon+ SubType=2
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
StepFunction=(0.2, 0.1 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
StepFunction=(0.1, 0.02 mm), integ: 1, 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 TeV
|
||||
Bragg : Emin= 0 eV Emax=1.05231 MeV deltaVI
|
||||
BetheBloch : Emin=1.05231 MeV Emax= 100 TeV deltaVI
|
||||
|
||||
hBrems: for kaon+ SubType=3
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
hBrem : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
hPairProd: for kaon+ SubType=4
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
Sampling table 18x1001 from 3.94942 GeV to 100 TeV
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
hPairProd : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
CoulombScat: for kaon+, integral:1 SubType=1 BuildTable=1
|
||||
Lambda table from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
ThetaMin(p) < Theta(degree) < 180 pLimit(GeV^1)= 0.139531
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
eCoulombScattering : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
msc: for kaon- SubType= 10
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 0
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
UrbanMsc : Emin= 0 eV Emax= 100 TeV Nbins=84 100 eV - 100 TeV
|
||||
WentzelVIUni : Emin= 0 eV Emax= 100 TeV Nbins=240 100 eV - 100 TeV
|
||||
|
||||
hIoni: for kaon- SubType=2
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
StepFunction=(0.2, 0.1 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
StepFunction=(0.1, 0.02 mm), integ: 1, 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 TeV
|
||||
ICRU73QO : Emin= 0 eV Emax=1.05231 MeV deltaVI
|
||||
BetheBloch : Emin=1.05231 MeV Emax= 100 TeV deltaVI
|
||||
|
||||
hBrems: for kaon- SubType=3
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
hBrem : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
hPairProd: for kaon- SubType=4
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
Sampling table 18x1001 from 3.94942 GeV to 100 TeV
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
hPairProd : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
CoulombScat: for kaon-, integral:1 SubType=1 BuildTable=1
|
||||
Used Lambda table of kaon+
|
||||
ThetaMin(p) < Theta(degree) < 180 pLimit(GeV^1)= 0.139531
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
eCoulombScattering : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
msc: for mu+ SubType= 10
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 0, polarAngLim(deg)= 180
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 1, polarAngLim(deg)= 180
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
UrbanMsc : Emin= 0 eV Emax= 100 TeV Nbins=84 100 eV - 100 TeV
|
||||
WentzelVIUni : Emin= 0 eV Emax= 100 TeV Nbins=240 100 eV - 100 TeV
|
||||
|
||||
muIoni: for mu+ SubType=2
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
StepFunction=(0.2, 0.1 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
StepFunction=(0.1, 0.02 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
Bragg : Emin= 0 eV Emax= 200 keV
|
||||
BetheBloch : Emin= 200 keV Emax= 1 GeV
|
||||
Bragg : Emin= 0 eV Emax= 200 keV deltaVI
|
||||
BetheBloch : Emin= 200 keV Emax= 1 GeV deltaVI
|
||||
MuBetheBloch : Emin= 1 GeV Emax= 100 TeV
|
||||
|
||||
muBrems: for mu+ SubType=3
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
MuBrem : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
muPairProd: for mu+ SubType=4
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
Sampling table 21x1001 from 1 GeV to 100 TeV
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
muPairProd : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
msc: for mu- SubType= 10
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 0, polarAngLim(deg)= 180
|
||||
CoulombScat: for mu+, integral:1 SubType=1 BuildTable=1
|
||||
Lambda table from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
ThetaMin(p) < Theta(degree) < 180 pLimit(GeV^1)= 0.139531
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
UrbanMsc : Emin= 0 eV Emax= 100 TeV Nbins=84 100 eV - 100 TeV
|
||||
eCoulombScattering : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
msc: for mu- SubType= 10
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 1, polarAngLim(deg)= 180
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
WentzelVIUni : Emin= 0 eV Emax= 100 TeV Nbins=240 100 eV - 100 TeV
|
||||
|
||||
muIoni: for mu- SubType=2
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
StepFunction=(0.2, 0.1 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
StepFunction=(0.1, 0.02 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
ICRU73QO : Emin= 0 eV Emax= 200 keV
|
||||
BetheBloch : Emin= 200 keV Emax= 1 GeV
|
||||
ICRU73QO : Emin= 0 eV Emax= 200 keV deltaVI
|
||||
BetheBloch : Emin= 200 keV Emax= 1 GeV deltaVI
|
||||
MuBetheBloch : Emin= 1 GeV Emax= 100 TeV
|
||||
|
||||
muBrems: for mu- SubType=3
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
MuBrem : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
muPairProd: for mu- SubType=4
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
Sampling table 21x1001 from 1 GeV to 100 TeV
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
muPairProd : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
msc: for pi+ SubType= 10
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 0
|
||||
CoulombScat: for mu-, integral:1 SubType=1 BuildTable=1
|
||||
Used Lambda table of mu+
|
||||
ThetaMin(p) < Theta(degree) < 180 pLimit(GeV^1)= 0.139531
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
UrbanMsc : Emin= 0 eV Emax= 100 TeV Nbins=84 100 eV - 100 TeV
|
||||
eCoulombScattering : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
msc: for pi+ SubType= 10
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
WentzelVIUni : Emin= 0 eV Emax= 100 TeV Nbins=240 100 eV - 100 TeV
|
||||
|
||||
hIoni: for pi+ SubType=2
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
StepFunction=(0.2, 0.1 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
StepFunction=(0.1, 0.02 mm), integ: 1, 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 TeV
|
||||
Bragg : Emin= 0 eV Emax=297.505 keV deltaVI
|
||||
BetheBloch : Emin=297.505 keV Emax= 100 TeV deltaVI
|
||||
|
||||
hBrems: for pi+ SubType=3
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
hBrem : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
hPairProd: for pi+ SubType=4
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
Sampling table 20x1001 from 1.11656 GeV to 100 TeV
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
hPairProd : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
CoulombScat: for pi+, integral:1 SubType=1 BuildTable=1
|
||||
Lambda table from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
ThetaMin(p) < Theta(degree) < 180 pLimit(GeV^1)= 0.139531
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
eCoulombScattering : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
msc: for pi- SubType= 10
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 0
|
||||
RangeFactor= 0.2, stepLimType: 0, latDisp: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
UrbanMsc : Emin= 0 eV Emax= 100 TeV Nbins=84 100 eV - 100 TeV
|
||||
WentzelVIUni : Emin= 0 eV Emax= 100 TeV Nbins=240 100 eV - 100 TeV
|
||||
|
||||
hIoni: for pi- SubType=2
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 84 bins
|
||||
Lambda tables from threshold to 100 TeV, 7 bins/decade, spline: 1
|
||||
StepFunction=(0.2, 0.1 mm), integ: 1, fluct: 1, linLossLim= 0.01
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
StepFunction=(0.1, 0.02 mm), integ: 1, 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 TeV
|
||||
ICRU73QO : Emin= 0 eV Emax=297.505 keV deltaVI
|
||||
BetheBloch : Emin=297.505 keV Emax= 100 TeV deltaVI
|
||||
|
||||
========= Table of registered couples ==============================
|
||||
hBrems: for pi- SubType=3
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
hBrem : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
Index : 0 used in the geometry : Yes
|
||||
Material : Air
|
||||
Range cuts : gamma 1 mm e- 1 mm e+ 1 mm proton 1 mm
|
||||
Energy thresholds : gamma 990 eV e- 990 eV e+ 990 eV proton 100 keV
|
||||
Region(s) which use this couple :
|
||||
DefaultRegionForTheWorld
|
||||
hPairProd: for pi- SubType=4
|
||||
dE/dx and range tables from 100 eV to 100 TeV in 240 bins
|
||||
Lambda tables from threshold to 100 TeV, 20 bins/decade, spline: 1
|
||||
Sampling table 20x1001 from 1.11656 GeV to 100 TeV
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
hPairProd : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
Index : 1 used in the geometry : Yes
|
||||
Material : Water
|
||||
Range cuts : gamma 1 mm e- 1 mm e+ 1 mm proton 1 mm
|
||||
Energy thresholds : gamma 2.94056 keV e- 351.877 keV e+ 342.545 keV proton 100 keV
|
||||
Region(s) which use this couple :
|
||||
DefaultRegionForTheWorld
|
||||
CoulombScat: for pi-, integral:1 SubType=1 BuildTable=1
|
||||
Used Lambda table of pi+
|
||||
ThetaMin(p) < Theta(degree) < 180 pLimit(GeV^1)= 0.139531
|
||||
===== EM models for the G4Region DefaultRegionForTheWorld ======
|
||||
eCoulombScattering : Emin= 0 eV Emax= 100 TeV
|
||||
|
||||
====================================================================
|
||||
HADRONIC PROCESSES SUMMARY (verbose level 1)
|
||||
|
||||
G4VisManager: Using G4TrajectoryDrawByCharge as fallback trajectory model.
|
||||
See commands in /vis/modeling/trajectories/ for other options.
|
||||
---------------------------------------------------
|
||||
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 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 ---> 100 TeV
|
||||
|
||||
---------------------------------------------------
|
||||
Hadronic Processes for He3
|
||||
|
||||
Process: hadElastic
|
||||
Model: hElasticLHEP: 0 eV /n ---> 100 TeV/n
|
||||
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 100 TeV
|
||||
|
||||
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 ---> 100 TeV
|
||||
|
||||
---------------------------------------------------
|
||||
Hadronic Processes for alpha
|
||||
|
||||
Process: hadElastic
|
||||
Model: hElasticLHEP: 0 eV /n ---> 100 TeV/n
|
||||
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 100 TeV
|
||||
|
||||
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 ---> 100 TeV
|
||||
|
||||
---------------------------------------------------
|
||||
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 ---> 100 TeV
|
||||
|
||||
Process: anti_He3Inelastic
|
||||
Model: FTFP: 0 eV /n ---> 100 TeV/n
|
||||
Cr_sctns: AntiAGlauber: 0 eV ---> 100 TeV
|
||||
|
||||
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 ---> 100 TeV
|
||||
|
||||
Process: anti_alphaInelastic
|
||||
Model: FTFP: 0 eV /n ---> 100 TeV/n
|
||||
Cr_sctns: AntiAGlauber: 0 eV ---> 100 TeV
|
||||
|
||||
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 ---> 100 TeV
|
||||
|
||||
Process: anti_deuteronInelastic
|
||||
Model: FTFP: 0 eV /n ---> 100 TeV/n
|
||||
Cr_sctns: AntiAGlauber: 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 ---> 100 TeV
|
||||
|
||||
Process: anti_neutronInelastic
|
||||
Model: FTFP: 0 eV ---> 100 TeV
|
||||
Cr_sctns: AntiAGlauber: 0 eV ---> 100 TeV
|
||||
|
||||
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 ---> 100 TeV
|
||||
|
||||
Process: anti_protonInelastic
|
||||
Model: FTFP: 0 eV ---> 100 TeV
|
||||
Cr_sctns: AntiAGlauber: 0 eV ---> 100 TeV
|
||||
|
||||
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 ---> 100 TeV
|
||||
|
||||
Process: anti_tritonInelastic
|
||||
Model: FTFP: 0 eV /n ---> 100 TeV/n
|
||||
Cr_sctns: AntiAGlauber: 0 eV ---> 100 TeV
|
||||
|
||||
Process: hFritiofCaptureAtRest
|
||||
|
||||
---------------------------------------------------
|
||||
Hadronic Processes for deuteron
|
||||
|
||||
Process: hadElastic
|
||||
Model: hElasticLHEP: 0 eV /n ---> 100 TeV/n
|
||||
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 100 TeV
|
||||
|
||||
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 ---> 100 TeV
|
||||
|
||||
---------------------------------------------------
|
||||
Hadronic Processes for e+
|
||||
|
||||
Process: electronNuclear
|
||||
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: BertiniCascade: 0 eV ---> 6 GeV
|
||||
Model: TheoFSGenerator: 3 GeV ---> 100 TeV
|
||||
Cr_sctns: PhotoNuclearXS: 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: BertiniCascade: 0 eV ---> 6 GeV
|
||||
Model: FTFP: 3 GeV ---> 100 TeV
|
||||
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 triton
|
||||
|
||||
Process: hadElastic
|
||||
Model: hElasticLHEP: 0 eV /n ---> 100 TeV/n
|
||||
Cr_sctns: Glauber-Gribov Nucl-nucl: 0 eV ---> 100 TeV
|
||||
|
||||
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 ---> 100 TeV
|
||||
|
||||
================================================================
|
||||
=======================================================================
|
||||
====== Pre-compound/De-excitation Physics Parameters ========
|
||||
=======================================================================
|
||||
Type of pre-compound inverse x-section 3
|
||||
Pre-compound model active 1
|
||||
Pre-compound excitation low energy (MeV) 0.1
|
||||
Pre-compound excitation high energy (MeV) 30
|
||||
Type of de-excitation inverse x-section 3
|
||||
Type of de-excitation factory Evaporation+GEM
|
||||
Number of de-excitation channels 68
|
||||
Min excitation energy (keV) 0.01
|
||||
Min energy per nucleon for multifragmentation (MeV) 2e+05
|
||||
Limit excitation energy for Fermi BreakUp (MeV) 20
|
||||
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 (ns) 1e+12
|
||||
Internal e- conversion flag 1
|
||||
Store e- internal conversion data 0
|
||||
Electron internal conversion ID 2
|
||||
Correlated gamma emission flag 0
|
||||
Max 2J for sampling of angular correlations 10
|
||||
Upload data before 1st event for Z < 9
|
||||
=======================================================================
|
||||
### Run 0 start.
|
||||
Number of Scintillation photons produced in this event : 76
|
||||
Number of Cerenkov photons produced in this event : 16
|
||||
number of event = 1 User=0.000000s Real=0.002422s Sys=0.000000s
|
||||
Number of Scintillation photons produced in this event : 62
|
||||
Number of Cerenkov photons produced in this event : 14
|
||||
number of event = 1 User=0.000000s Real=0.002565s Sys=0.000000s
|
||||
#
|
||||
/OpNovice/phys/cerenkovMaxPhotons 15
|
||||
/process/optical/cerenkov/setMaxPhotons 15
|
||||
#
|
||||
/run/beamOn 1
|
||||
### Run 1 start.
|
||||
Number of Scintillation photons produced in this event : 55
|
||||
Number of Scintillation photons produced in this event : 67
|
||||
Number of Cerenkov photons produced in this event : 13
|
||||
number of event = 1 User=0.000000s Real=0.000718s Sys=0.000000s
|
||||
Graphics systems deleted.
|
||||
Visualization Manager deleting...
|
||||
number of event = 1 User=0.000000s Real=0.001636s Sys=0.000000s
|
||||
|
||||
@@ -18,8 +18,8 @@ main()
|
||||
|
||||
==> define Random Number Engine and initial seed
|
||||
|
||||
G4VUserPhysicsList
|
||||
------------------
|
||||
G4Optical Physics
|
||||
-----------------
|
||||
|
||||
==> define particles; including *** G4OpticalPhoton ***
|
||||
define processes; including *** G4Cerenkov ***
|
||||
@@ -28,7 +28,7 @@ G4VUserPhysicsList
|
||||
*** G4OpRayleigh ***
|
||||
*** G4OpBoundaryProcess ***
|
||||
|
||||
==> A messenger command allows to define interactivly the
|
||||
==> A messenger command allows to define interactively the
|
||||
verbose level and the maximum number of Cerenkov photons per step
|
||||
(see for instance OpNovice.in)
|
||||
|
||||
@@ -76,8 +76,6 @@ Visualisation
|
||||
------------
|
||||
|
||||
- compile and link to generate an executable
|
||||
% cd OpNovice
|
||||
% gmake
|
||||
|
||||
This example handles the program arguments in a new way.
|
||||
It can be run with the following optional arguments:
|
||||
|
||||
@@ -45,8 +45,6 @@ class OpNoviceActionInitialization : public G4VUserActionInitialization
|
||||
|
||||
virtual void BuildForMaster() const;
|
||||
virtual void Build() const;
|
||||
|
||||
virtual G4VSteppingVerbose* InitializeSteppingVerbose() const;
|
||||
};
|
||||
|
||||
#endif
|
||||
|
||||
@@ -1,91 +0,0 @@
|
||||
//
|
||||
// ********************************************************************
|
||||
// * License and Disclaimer *
|
||||
// * *
|
||||
// * The Geant4 software is copyright of the Copyright Holders of *
|
||||
// * the Geant4 Collaboration. It is provided under the terms and *
|
||||
// * conditions of the Geant4 Software License, included in the file *
|
||||
// * LICENSE and available at http://cern.ch/geant4/license . These *
|
||||
// * include a list of copyright holders. *
|
||||
// * *
|
||||
// * Neither the authors of this software system, nor their employing *
|
||||
// * institutes,nor the agencies providing financial support for this *
|
||||
// * work make any representation or warranty, express or implied, *
|
||||
// * regarding this software system or assume any liability for its *
|
||||
// * use. Please see the license in the file LICENSE and URL above *
|
||||
// * for the full disclaimer and the limitation of liability. *
|
||||
// * *
|
||||
// * This code implementation is the result of the scientific and *
|
||||
// * technical work of the GEANT4 collaboration. *
|
||||
// * By using, copying, modifying or distributing the software (or *
|
||||
// * any work based on the software) you agree to acknowledge its *
|
||||
// * use in resulting scientific publications, and indicate your *
|
||||
// * acceptance of all terms of the Geant4 Software license. *
|
||||
// ********************************************************************
|
||||
//
|
||||
/// \file OpNovice/include/OpNovicePhysicsList.hh
|
||||
/// \brief Definition of the OpNovicePhysicsList class
|
||||
//
|
||||
//
|
||||
//
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
#ifndef OpNovicePhysicsList_h
|
||||
#define OpNovicePhysicsList_h 1
|
||||
|
||||
#include "globals.hh"
|
||||
#include "G4VUserPhysicsList.hh"
|
||||
|
||||
class OpNovicePhysicsListMessenger;
|
||||
|
||||
class G4Cerenkov;
|
||||
class G4Scintillation;
|
||||
class G4OpAbsorption;
|
||||
class G4OpRayleigh;
|
||||
class G4OpMieHG;
|
||||
class G4OpBoundaryProcess;
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
class OpNovicePhysicsList : public G4VUserPhysicsList
|
||||
{
|
||||
public:
|
||||
|
||||
OpNovicePhysicsList();
|
||||
virtual ~OpNovicePhysicsList();
|
||||
|
||||
public:
|
||||
|
||||
virtual void ConstructParticle();
|
||||
virtual void ConstructProcess();
|
||||
|
||||
virtual void SetCuts();
|
||||
|
||||
//these methods Construct physics processes and register them
|
||||
void ConstructDecay();
|
||||
void ConstructEM();
|
||||
void ConstructOp();
|
||||
|
||||
//for the Messenger
|
||||
void SetVerbose(G4int);
|
||||
void SetNbOfPhotonsCerenkov(G4int);
|
||||
|
||||
private:
|
||||
|
||||
OpNovicePhysicsListMessenger* fMessenger;
|
||||
|
||||
static G4ThreadLocal G4int fVerboseLevel;
|
||||
static G4ThreadLocal G4int fMaxNumPhotonStep;
|
||||
|
||||
static G4ThreadLocal G4Cerenkov* fCerenkovProcess;
|
||||
static G4ThreadLocal G4Scintillation* fScintillationProcess;
|
||||
static G4ThreadLocal G4OpAbsorption* fAbsorptionProcess;
|
||||
static G4ThreadLocal G4OpRayleigh* fRayleighScatteringProcess;
|
||||
static G4ThreadLocal G4OpMieHG* fMieHGScatteringProcess;
|
||||
static G4ThreadLocal G4OpBoundaryProcess* fBoundaryProcess;
|
||||
};
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
#endif /* OpNovicePhysicsList_h */
|
||||
@@ -1,67 +0,0 @@
|
||||
//
|
||||
// ********************************************************************
|
||||
// * License and Disclaimer *
|
||||
// * *
|
||||
// * The Geant4 software is copyright of the Copyright Holders of *
|
||||
// * the Geant4 Collaboration. It is provided under the terms and *
|
||||
// * conditions of the Geant4 Software License, included in the file *
|
||||
// * LICENSE and available at http://cern.ch/geant4/license . These *
|
||||
// * include a list of copyright holders. *
|
||||
// * *
|
||||
// * Neither the authors of this software system, nor their employing *
|
||||
// * institutes,nor the agencies providing financial support for this *
|
||||
// * work make any representation or warranty, express or implied, *
|
||||
// * regarding this software system or assume any liability for its *
|
||||
// * use. Please see the license in the file LICENSE and URL above *
|
||||
// * for the full disclaimer and the limitation of liability. *
|
||||
// * *
|
||||
// * This code implementation is the result of the scientific and *
|
||||
// * technical work of the GEANT4 collaboration. *
|
||||
// * By using, copying, modifying or distributing the software (or *
|
||||
// * any work based on the software) you agree to acknowledge its *
|
||||
// * use in resulting scientific publications, and indicate your *
|
||||
// * acceptance of all terms of the Geant4 Software license. *
|
||||
// ********************************************************************
|
||||
//
|
||||
/// \file OpNovice/include/OpNovicePhysicsListMessenger.hh
|
||||
/// \brief Definition of the OpNovicePhysicsListMessenger class
|
||||
//
|
||||
//
|
||||
//
|
||||
//
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
#ifndef OpNovicePhysicsListMessenger_h
|
||||
#define OpNovicePhysicsListMessenger_h 1
|
||||
|
||||
#include "globals.hh"
|
||||
#include "G4UImessenger.hh"
|
||||
|
||||
class OpNovicePhysicsList;
|
||||
class G4UIdirectory;
|
||||
class G4UIcmdWithAnInteger;
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
class OpNovicePhysicsListMessenger: public G4UImessenger
|
||||
{
|
||||
public:
|
||||
OpNovicePhysicsListMessenger(OpNovicePhysicsList* );
|
||||
virtual ~OpNovicePhysicsListMessenger();
|
||||
|
||||
virtual void SetNewValue(G4UIcommand*, G4String);
|
||||
|
||||
private:
|
||||
OpNovicePhysicsList* fPhysicsList;
|
||||
|
||||
G4UIdirectory* fOpNoviceDir;
|
||||
G4UIdirectory* fPhysDir;
|
||||
G4UIcmdWithAnInteger* fVerboseCmd;
|
||||
G4UIcmdWithAnInteger* fCerenkovCmd;
|
||||
};
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
#endif
|
||||
@@ -1,58 +0,0 @@
|
||||
//
|
||||
// ********************************************************************
|
||||
// * License and Disclaimer *
|
||||
// * *
|
||||
// * The Geant4 software is copyright of the Copyright Holders of *
|
||||
// * the Geant4 Collaboration. It is provided under the terms and *
|
||||
// * conditions of the Geant4 Software License, included in the file *
|
||||
// * LICENSE and available at http://cern.ch/geant4/license . These *
|
||||
// * include a list of copyright holders. *
|
||||
// * *
|
||||
// * Neither the authors of this software system, nor their employing *
|
||||
// * institutes,nor the agencies providing financial support for this *
|
||||
// * work make any representation or warranty, express or implied, *
|
||||
// * regarding this software system or assume any liability for its *
|
||||
// * use. Please see the license in the file LICENSE and URL above *
|
||||
// * for the full disclaimer and the limitation of liability. *
|
||||
// * *
|
||||
// * This code implementation is the result of the scientific and *
|
||||
// * technical work of the GEANT4 collaboration. *
|
||||
// * By using, copying, modifying or distributing the software (or *
|
||||
// * any work based on the software) you agree to acknowledge its *
|
||||
// * use in resulting scientific publications, and indicate your *
|
||||
// * acceptance of all terms of the Geant4 Software license. *
|
||||
// ********************************************************************
|
||||
//
|
||||
/// \file OpNovice/include/OpNoviceSteppingVerbose.hh
|
||||
/// \brief Definition of the OpNoviceSteppingVerbose class
|
||||
//
|
||||
//
|
||||
//
|
||||
//
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
class OpNoviceSteppingVerbose;
|
||||
|
||||
#ifndef OpNoviceSteppingVerbose_h
|
||||
#define OpNoviceSteppingVerbose_h 1
|
||||
|
||||
#include "G4SteppingVerbose.hh"
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
class OpNoviceSteppingVerbose : public G4SteppingVerbose
|
||||
{
|
||||
public:
|
||||
|
||||
OpNoviceSteppingVerbose();
|
||||
virtual ~OpNoviceSteppingVerbose();
|
||||
|
||||
virtual void StepInfo();
|
||||
virtual void TrackingStarted();
|
||||
|
||||
};
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
#endif
|
||||
@@ -1,5 +1,7 @@
|
||||
/control/verbose 2
|
||||
/tracking/verbose 3
|
||||
/tracking/verbose 2
|
||||
#
|
||||
/run/initialize
|
||||
#
|
||||
/gun/particle opticalphoton
|
||||
/gun/energy 3 eV
|
||||
|
||||
@@ -32,7 +32,6 @@
|
||||
#include "OpNoviceRunAction.hh"
|
||||
#include "OpNoviceSteppingAction.hh"
|
||||
#include "OpNoviceStackingAction.hh"
|
||||
#include "OpNoviceSteppingVerbose.hh"
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
@@ -61,13 +60,3 @@ void OpNoviceActionInitialization::Build() const
|
||||
SetUserAction(new OpNoviceSteppingAction());
|
||||
SetUserAction(new OpNoviceStackingAction());
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
G4VSteppingVerbose*
|
||||
OpNoviceActionInitialization::InitializeSteppingVerbose() const
|
||||
{
|
||||
return new OpNoviceSteppingVerbose();
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
@@ -318,20 +318,20 @@ G4VPhysicalVolume* OpNoviceDetectorConstruction::Construct()
|
||||
G4double ephoton[num] = {2.034*eV, 4.136*eV};
|
||||
|
||||
//OpticalWaterSurface
|
||||
G4double refractiveIndex[num] = {1.35, 1.40};
|
||||
G4double specularLobe[num] = {0.3, 0.3};
|
||||
G4double specularSpike[num] = {0.2, 0.2};
|
||||
G4double backScatter[num] = {0.2, 0.2};
|
||||
|
||||
G4MaterialPropertiesTable* myST1 = new G4MaterialPropertiesTable();
|
||||
|
||||
myST1->AddProperty("RINDEX", ephoton, refractiveIndex, num);
|
||||
myST1->AddProperty("SPECULARLOBECONSTANT", ephoton, specularLobe, num);
|
||||
myST1->AddProperty("SPECULARSPIKECONSTANT", ephoton, specularSpike, num);
|
||||
myST1->AddProperty("BACKSCATTERCONSTANT", ephoton, backScatter, num);
|
||||
|
||||
G4cout << "Water Surface G4MaterialPropertiesTable" << G4endl;
|
||||
myST1->DumpTable();
|
||||
// if surface model is unified we can set parameters
|
||||
// G4double refractiveIndex[num] = {1.35, 1.40};
|
||||
// G4double specularLobe[num] = {0.3, 0.3};
|
||||
// G4double specularSpike[num] = {0.2, 0.2};
|
||||
// G4double backScatter[num] = {0.2, 0.2};
|
||||
//
|
||||
// G4MaterialPropertiesTable* myST1 = new G4MaterialPropertiesTable();
|
||||
// myST1->AddProperty("RINDEX", ephoton, refractiveIndex, num);
|
||||
// myST1->AddProperty("SPECULARLOBECONSTANT", ephoton, specularLobe, num);
|
||||
// myST1->AddProperty("SPECULARSPIKECONSTANT", ephoton, specularSpike, num);
|
||||
// myST1->AddProperty("BACKSCATTERCONSTANT", ephoton, backScatter, num);
|
||||
//
|
||||
// G4cout << "Water Surface G4MaterialPropertiesTable" << G4endl;
|
||||
// myST1->DumpTable();
|
||||
|
||||
// opWaterSurface->SetMaterialPropertiesTable(myST1);
|
||||
|
||||
|
||||
@@ -1,307 +0,0 @@
|
||||
//
|
||||
// ********************************************************************
|
||||
// * License and Disclaimer *
|
||||
// * *
|
||||
// * The Geant4 software is copyright of the Copyright Holders of *
|
||||
// * the Geant4 Collaboration. It is provided under the terms and *
|
||||
// * conditions of the Geant4 Software License, included in the file *
|
||||
// * LICENSE and available at http://cern.ch/geant4/license . These *
|
||||
// * include a list of copyright holders. *
|
||||
// * *
|
||||
// * Neither the authors of this software system, nor their employing *
|
||||
// * institutes,nor the agencies providing financial support for this *
|
||||
// * work make any representation or warranty, express or implied, *
|
||||
// * regarding this software system or assume any liability for its *
|
||||
// * use. Please see the license in the file LICENSE and URL above *
|
||||
// * for the full disclaimer and the limitation of liability. *
|
||||
// * *
|
||||
// * This code implementation is the result of the scientific and *
|
||||
// * technical work of the GEANT4 collaboration. *
|
||||
// * By using, copying, modifying or distributing the software (or *
|
||||
// * any work based on the software) you agree to acknowledge its *
|
||||
// * use in resulting scientific publications, and indicate your *
|
||||
// * acceptance of all terms of the Geant4 Software license. *
|
||||
// ********************************************************************
|
||||
//
|
||||
/// \file OpNovice/src/OpNovicePhysicsList.cc
|
||||
/// \brief Implementation of the OpNovicePhysicsList class
|
||||
//
|
||||
//
|
||||
//
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
#include "globals.hh"
|
||||
#include "OpNovicePhysicsList.hh"
|
||||
#include "OpNovicePhysicsListMessenger.hh"
|
||||
|
||||
#include "G4ParticleDefinition.hh"
|
||||
#include "G4ParticleTypes.hh"
|
||||
#include "G4ParticleTable.hh"
|
||||
|
||||
#include "G4BosonConstructor.hh"
|
||||
#include "G4LeptonConstructor.hh"
|
||||
#include "G4MesonConstructor.hh"
|
||||
#include "G4BaryonConstructor.hh"
|
||||
#include "G4IonConstructor.hh"
|
||||
#include "G4ShortLivedConstructor.hh"
|
||||
|
||||
#include "G4ProcessManager.hh"
|
||||
|
||||
#include "G4Cerenkov.hh"
|
||||
#include "G4Scintillation.hh"
|
||||
#include "G4OpAbsorption.hh"
|
||||
#include "G4OpRayleigh.hh"
|
||||
#include "G4OpMieHG.hh"
|
||||
#include "G4OpBoundaryProcess.hh"
|
||||
|
||||
#include "G4LossTableManager.hh"
|
||||
#include "G4EmSaturation.hh"
|
||||
|
||||
G4ThreadLocal G4int OpNovicePhysicsList::fVerboseLevel = 1;
|
||||
G4ThreadLocal G4int OpNovicePhysicsList::fMaxNumPhotonStep = 20;
|
||||
G4ThreadLocal G4Cerenkov* OpNovicePhysicsList::fCerenkovProcess = 0;
|
||||
G4ThreadLocal G4Scintillation* OpNovicePhysicsList::fScintillationProcess = 0;
|
||||
G4ThreadLocal G4OpAbsorption* OpNovicePhysicsList::fAbsorptionProcess = 0;
|
||||
G4ThreadLocal G4OpRayleigh* OpNovicePhysicsList::fRayleighScatteringProcess = 0;
|
||||
G4ThreadLocal G4OpMieHG* OpNovicePhysicsList::fMieHGScatteringProcess = 0;
|
||||
G4ThreadLocal G4OpBoundaryProcess* OpNovicePhysicsList::fBoundaryProcess = 0;
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
OpNovicePhysicsList::OpNovicePhysicsList()
|
||||
: G4VUserPhysicsList()
|
||||
{
|
||||
fMessenger = new OpNovicePhysicsListMessenger(this);
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
OpNovicePhysicsList::~OpNovicePhysicsList() { delete fMessenger; }
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
void OpNovicePhysicsList::ConstructParticle()
|
||||
{
|
||||
// In this method, static member functions should be called
|
||||
// for all particles which you want to use.
|
||||
// This ensures that objects of these particle types will be
|
||||
// created in the program.
|
||||
|
||||
G4BosonConstructor bConstructor;
|
||||
bConstructor.ConstructParticle();
|
||||
|
||||
G4LeptonConstructor lConstructor;
|
||||
lConstructor.ConstructParticle();
|
||||
|
||||
G4MesonConstructor mConstructor;
|
||||
mConstructor.ConstructParticle();
|
||||
|
||||
G4BaryonConstructor rConstructor;
|
||||
rConstructor.ConstructParticle();
|
||||
|
||||
G4IonConstructor iConstructor;
|
||||
iConstructor.ConstructParticle();
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
void OpNovicePhysicsList::ConstructProcess()
|
||||
{
|
||||
AddTransportation();
|
||||
ConstructDecay();
|
||||
ConstructEM();
|
||||
ConstructOp();
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
#include "G4Decay.hh"
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
void OpNovicePhysicsList::ConstructDecay()
|
||||
{
|
||||
// Add Decay Process
|
||||
G4Decay* theDecayProcess = new G4Decay();
|
||||
auto particleIterator=GetParticleIterator();
|
||||
particleIterator->reset();
|
||||
while( (*particleIterator)() ){
|
||||
G4ParticleDefinition* particle = particleIterator->value();
|
||||
G4ProcessManager* pmanager = particle->GetProcessManager();
|
||||
if (theDecayProcess->IsApplicable(*particle)) {
|
||||
pmanager ->AddProcess(theDecayProcess);
|
||||
// set ordering for PostStepDoIt and AtRestDoIt
|
||||
pmanager ->SetProcessOrdering(theDecayProcess, idxPostStep);
|
||||
pmanager ->SetProcessOrdering(theDecayProcess, idxAtRest);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
#include "G4ComptonScattering.hh"
|
||||
#include "G4GammaConversion.hh"
|
||||
#include "G4PhotoElectricEffect.hh"
|
||||
|
||||
#include "G4eMultipleScattering.hh"
|
||||
#include "G4MuMultipleScattering.hh"
|
||||
#include "G4hMultipleScattering.hh"
|
||||
|
||||
#include "G4eIonisation.hh"
|
||||
#include "G4eBremsstrahlung.hh"
|
||||
#include "G4eplusAnnihilation.hh"
|
||||
|
||||
#include "G4MuIonisation.hh"
|
||||
#include "G4MuBremsstrahlung.hh"
|
||||
#include "G4MuPairProduction.hh"
|
||||
|
||||
#include "G4hIonisation.hh"
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
void OpNovicePhysicsList::ConstructEM()
|
||||
{
|
||||
auto particleIterator=GetParticleIterator();
|
||||
particleIterator->reset();
|
||||
while( (*particleIterator)() ){
|
||||
G4ParticleDefinition* particle = particleIterator->value();
|
||||
G4ProcessManager* pmanager = particle->GetProcessManager();
|
||||
G4String particleName = particle->GetParticleName();
|
||||
|
||||
if (particleName == "gamma") {
|
||||
// gamma
|
||||
// Construct processes for gamma
|
||||
pmanager->AddDiscreteProcess(new G4GammaConversion());
|
||||
pmanager->AddDiscreteProcess(new G4ComptonScattering());
|
||||
pmanager->AddDiscreteProcess(new G4PhotoElectricEffect());
|
||||
|
||||
} else if (particleName == "e-") {
|
||||
//electron
|
||||
// Construct processes for electron
|
||||
pmanager->AddProcess(new G4eMultipleScattering(),-1, 1, 1);
|
||||
pmanager->AddProcess(new G4eIonisation(), -1, 2, 2);
|
||||
pmanager->AddProcess(new G4eBremsstrahlung(), -1, 3, 3);
|
||||
|
||||
} else if (particleName == "e+") {
|
||||
//positron
|
||||
// Construct processes for positron
|
||||
pmanager->AddProcess(new G4eMultipleScattering(),-1, 1, 1);
|
||||
pmanager->AddProcess(new G4eIonisation(), -1, 2, 2);
|
||||
pmanager->AddProcess(new G4eBremsstrahlung(), -1, 3, 3);
|
||||
pmanager->AddProcess(new G4eplusAnnihilation(), 0,-1, 4);
|
||||
|
||||
} else if( particleName == "mu+" ||
|
||||
particleName == "mu-" ) {
|
||||
//muon
|
||||
// Construct processes for muon
|
||||
pmanager->AddProcess(new G4MuMultipleScattering(),-1, 1, 1);
|
||||
pmanager->AddProcess(new G4MuIonisation(), -1, 2, 2);
|
||||
pmanager->AddProcess(new G4MuBremsstrahlung(), -1, 3, 3);
|
||||
pmanager->AddProcess(new G4MuPairProduction(), -1, 4, 4);
|
||||
|
||||
} else {
|
||||
if ((particle->GetPDGCharge() != 0.0) &&
|
||||
(particle->GetParticleName() != "chargedgeantino") &&
|
||||
!particle->IsShortLived()) {
|
||||
// all others charged particles except geantino
|
||||
pmanager->AddProcess(new G4hMultipleScattering(),-1,1,1);
|
||||
pmanager->AddProcess(new G4hIonisation(), -1,2,2);
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
#include "G4Threading.hh"
|
||||
|
||||
void OpNovicePhysicsList::ConstructOp()
|
||||
{
|
||||
fCerenkovProcess = new G4Cerenkov("Cerenkov");
|
||||
fCerenkovProcess->SetMaxNumPhotonsPerStep(fMaxNumPhotonStep);
|
||||
fCerenkovProcess->SetMaxBetaChangePerStep(10.0);
|
||||
fCerenkovProcess->SetTrackSecondariesFirst(true);
|
||||
fScintillationProcess = new G4Scintillation("Scintillation");
|
||||
fScintillationProcess->SetScintillationYieldFactor(1.);
|
||||
fScintillationProcess->SetTrackSecondariesFirst(true);
|
||||
fAbsorptionProcess = new G4OpAbsorption();
|
||||
fRayleighScatteringProcess = new G4OpRayleigh();
|
||||
fMieHGScatteringProcess = new G4OpMieHG();
|
||||
fBoundaryProcess = new G4OpBoundaryProcess();
|
||||
|
||||
fCerenkovProcess->SetVerboseLevel(fVerboseLevel);
|
||||
fScintillationProcess->SetVerboseLevel(fVerboseLevel);
|
||||
fAbsorptionProcess->SetVerboseLevel(fVerboseLevel);
|
||||
fRayleighScatteringProcess->SetVerboseLevel(fVerboseLevel);
|
||||
fMieHGScatteringProcess->SetVerboseLevel(fVerboseLevel);
|
||||
fBoundaryProcess->SetVerboseLevel(fVerboseLevel);
|
||||
|
||||
// Use Birks Correction in the Scintillation process
|
||||
if(G4Threading::IsMasterThread())
|
||||
{
|
||||
G4EmSaturation* emSaturation =
|
||||
G4LossTableManager::Instance()->EmSaturation();
|
||||
fScintillationProcess->AddSaturation(emSaturation);
|
||||
}
|
||||
|
||||
auto particleIterator=GetParticleIterator();
|
||||
particleIterator->reset();
|
||||
while( (*particleIterator)() ){
|
||||
G4ParticleDefinition* particle = particleIterator->value();
|
||||
G4ProcessManager* pmanager = particle->GetProcessManager();
|
||||
G4String particleName = particle->GetParticleName();
|
||||
if (fCerenkovProcess->IsApplicable(*particle)) {
|
||||
pmanager->AddProcess(fCerenkovProcess);
|
||||
pmanager->SetProcessOrdering(fCerenkovProcess,idxPostStep);
|
||||
}
|
||||
if (fScintillationProcess->IsApplicable(*particle)) {
|
||||
pmanager->AddProcess(fScintillationProcess);
|
||||
pmanager->SetProcessOrderingToLast(fScintillationProcess, idxAtRest);
|
||||
pmanager->SetProcessOrderingToLast(fScintillationProcess, idxPostStep);
|
||||
}
|
||||
if (particleName == "opticalphoton") {
|
||||
G4cout << " AddDiscreteProcess to OpticalPhoton " << G4endl;
|
||||
pmanager->AddDiscreteProcess(fAbsorptionProcess);
|
||||
pmanager->AddDiscreteProcess(fRayleighScatteringProcess);
|
||||
pmanager->AddDiscreteProcess(fMieHGScatteringProcess);
|
||||
pmanager->AddDiscreteProcess(fBoundaryProcess);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
void OpNovicePhysicsList::SetVerbose(G4int verbose)
|
||||
{
|
||||
fVerboseLevel = verbose;
|
||||
|
||||
fCerenkovProcess->SetVerboseLevel(fVerboseLevel);
|
||||
fScintillationProcess->SetVerboseLevel(fVerboseLevel);
|
||||
fAbsorptionProcess->SetVerboseLevel(fVerboseLevel);
|
||||
fRayleighScatteringProcess->SetVerboseLevel(fVerboseLevel);
|
||||
fMieHGScatteringProcess->SetVerboseLevel(fVerboseLevel);
|
||||
fBoundaryProcess->SetVerboseLevel(fVerboseLevel);
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
void OpNovicePhysicsList::SetNbOfPhotonsCerenkov(G4int MaxNumber)
|
||||
{
|
||||
fMaxNumPhotonStep = MaxNumber;
|
||||
|
||||
fCerenkovProcess->SetMaxNumPhotonsPerStep(fMaxNumPhotonStep);
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
void OpNovicePhysicsList::SetCuts()
|
||||
{
|
||||
// " G4VUserPhysicsList::SetCutsWithDefault" method sets
|
||||
// the default cut value for all particle types
|
||||
//
|
||||
SetCutsWithDefault();
|
||||
|
||||
if (verboseLevel>0) DumpCutValuesTable();
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
@@ -1,93 +0,0 @@
|
||||
//
|
||||
// ********************************************************************
|
||||
// * License and Disclaimer *
|
||||
// * *
|
||||
// * The Geant4 software is copyright of the Copyright Holders of *
|
||||
// * the Geant4 Collaboration. It is provided under the terms and *
|
||||
// * conditions of the Geant4 Software License, included in the file *
|
||||
// * LICENSE and available at http://cern.ch/geant4/license . These *
|
||||
// * include a list of copyright holders. *
|
||||
// * *
|
||||
// * Neither the authors of this software system, nor their employing *
|
||||
// * institutes,nor the agencies providing financial support for this *
|
||||
// * work make any representation or warranty, express or implied, *
|
||||
// * regarding this software system or assume any liability for its *
|
||||
// * use. Please see the license in the file LICENSE and URL above *
|
||||
// * for the full disclaimer and the limitation of liability. *
|
||||
// * *
|
||||
// * This code implementation is the result of the scientific and *
|
||||
// * technical work of the GEANT4 collaboration. *
|
||||
// * By using, copying, modifying or distributing the software (or *
|
||||
// * any work based on the software) you agree to acknowledge its *
|
||||
// * use in resulting scientific publications, and indicate your *
|
||||
// * acceptance of all terms of the Geant4 Software license. *
|
||||
// ********************************************************************
|
||||
//
|
||||
/// \file OpNovice/src/OpNovicePhysicsListMessenger.cc
|
||||
/// \brief Implementation of the OpNovicePhysicsListMessenger class
|
||||
//
|
||||
//
|
||||
//
|
||||
//
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
#include "OpNovicePhysicsListMessenger.hh"
|
||||
|
||||
#include "OpNovicePhysicsList.hh"
|
||||
#include "G4UIdirectory.hh"
|
||||
#include "G4UIcmdWithAnInteger.hh"
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
OpNovicePhysicsListMessenger::
|
||||
OpNovicePhysicsListMessenger(OpNovicePhysicsList* pPhys)
|
||||
: G4UImessenger(),
|
||||
fPhysicsList(pPhys)
|
||||
{
|
||||
fOpNoviceDir = new G4UIdirectory("/OpNovice/");
|
||||
fOpNoviceDir->SetGuidance("UI commands of this example");
|
||||
|
||||
fPhysDir = new G4UIdirectory("/OpNovice/phys/");
|
||||
fPhysDir->SetGuidance("PhysicsList control");
|
||||
|
||||
fVerboseCmd = new G4UIcmdWithAnInteger("/OpNovice/phys/verbose",this);
|
||||
fVerboseCmd->SetGuidance("set verbose for physics processes");
|
||||
fVerboseCmd->SetParameterName("verbose",true);
|
||||
fVerboseCmd->SetDefaultValue(1);
|
||||
fVerboseCmd->SetRange("verbose>=0");
|
||||
fVerboseCmd->AvailableForStates(G4State_PreInit, G4State_Idle);
|
||||
|
||||
fCerenkovCmd =
|
||||
new G4UIcmdWithAnInteger("/OpNovice/phys/cerenkovMaxPhotons",this);
|
||||
fCerenkovCmd->SetGuidance("set max nb of photons per step");
|
||||
fCerenkovCmd->SetParameterName("MaxNumber",false);
|
||||
fCerenkovCmd->SetRange("MaxNumber>=0");
|
||||
fCerenkovCmd->AvailableForStates(G4State_PreInit, G4State_Idle);
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
OpNovicePhysicsListMessenger::~OpNovicePhysicsListMessenger()
|
||||
{
|
||||
delete fVerboseCmd;
|
||||
delete fCerenkovCmd;
|
||||
delete fPhysDir;
|
||||
delete fOpNoviceDir;
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
void OpNovicePhysicsListMessenger::SetNewValue(G4UIcommand* command,
|
||||
G4String newValue)
|
||||
{
|
||||
if( command == fVerboseCmd )
|
||||
{fPhysicsList->SetVerbose(fVerboseCmd->GetNewIntValue(newValue));}
|
||||
|
||||
if( command == fCerenkovCmd )
|
||||
{fPhysicsList->
|
||||
SetNbOfPhotonsCerenkov(fCerenkovCmd->GetNewIntValue(newValue));}
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
@@ -1,184 +0,0 @@
|
||||
//
|
||||
// ********************************************************************
|
||||
// * License and Disclaimer *
|
||||
// * *
|
||||
// * The Geant4 software is copyright of the Copyright Holders of *
|
||||
// * the Geant4 Collaboration. It is provided under the terms and *
|
||||
// * conditions of the Geant4 Software License, included in the file *
|
||||
// * LICENSE and available at http://cern.ch/geant4/license . These *
|
||||
// * include a list of copyright holders. *
|
||||
// * *
|
||||
// * Neither the authors of this software system, nor their employing *
|
||||
// * institutes,nor the agencies providing financial support for this *
|
||||
// * work make any representation or warranty, express or implied, *
|
||||
// * regarding this software system or assume any liability for its *
|
||||
// * use. Please see the license in the file LICENSE and URL above *
|
||||
// * for the full disclaimer and the limitation of liability. *
|
||||
// * *
|
||||
// * This code implementation is the result of the scientific and *
|
||||
// * technical work of the GEANT4 collaboration. *
|
||||
// * By using, copying, modifying or distributing the software (or *
|
||||
// * any work based on the software) you agree to acknowledge its *
|
||||
// * use in resulting scientific publications, and indicate your *
|
||||
// * acceptance of all terms of the Geant4 Software license. *
|
||||
// ********************************************************************
|
||||
//
|
||||
/// \file OpNovice/src/OpNoviceSteppingVerbose.cc
|
||||
/// \brief Implementation of the OpNoviceSteppingVerbose class
|
||||
//
|
||||
//
|
||||
//
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
#include "OpNoviceSteppingVerbose.hh"
|
||||
|
||||
#include "G4SteppingManager.hh"
|
||||
#include "G4UnitsTable.hh"
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
OpNoviceSteppingVerbose::OpNoviceSteppingVerbose()
|
||||
: G4SteppingVerbose()
|
||||
{}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
OpNoviceSteppingVerbose::~OpNoviceSteppingVerbose()
|
||||
{}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
void OpNoviceSteppingVerbose::StepInfo()
|
||||
{
|
||||
CopyState();
|
||||
|
||||
G4int prec = G4cout.precision(3);
|
||||
|
||||
if( verboseLevel >= 1 ){
|
||||
if( verboseLevel >= 4 ) VerboseTrack();
|
||||
if( verboseLevel >= 3 ){
|
||||
G4cout << G4endl;
|
||||
G4cout << std::setw( 5) << "#Step#" << " "
|
||||
<< std::setw( 6) << "X" << " "
|
||||
<< std::setw( 6) << "Y" << " "
|
||||
<< std::setw( 6) << "Z" << " "
|
||||
<< std::setw( 9) << "KineE" << " "
|
||||
<< std::setw( 9) << "dEStep" << " "
|
||||
<< std::setw(10) << "StepLeng"
|
||||
<< std::setw(10) << "TrakLeng"
|
||||
<< std::setw(10) << "Volume" << " "
|
||||
<< std::setw(10) << "Process" << G4endl;
|
||||
}
|
||||
|
||||
G4cout << std::setw(5) << fTrack->GetCurrentStepNumber() << " "
|
||||
<< std::setw(6) << G4BestUnit(fTrack->GetPosition().x(),"Length")
|
||||
<< std::setw(6) << G4BestUnit(fTrack->GetPosition().y(),"Length")
|
||||
<< std::setw(6) << G4BestUnit(fTrack->GetPosition().z(),"Length")
|
||||
<< std::setw(6) << G4BestUnit(fTrack->GetKineticEnergy(),"Energy")
|
||||
<< std::setw(6) << G4BestUnit(fStep->GetTotalEnergyDeposit(),"Energy")
|
||||
<< std::setw(6) << G4BestUnit(fStep->GetStepLength(),"Length")
|
||||
<< std::setw(6) << G4BestUnit(fTrack->GetTrackLength(),"Length")
|
||||
<< " ";
|
||||
|
||||
// if( fStepStatus != fWorldBoundary){
|
||||
if( fTrack->GetNextVolume() != 0 ) {
|
||||
G4cout << std::setw(10) << fTrack->GetVolume()->GetName();
|
||||
} else {
|
||||
G4cout << std::setw(10) << "OutOfWorld";
|
||||
}
|
||||
|
||||
if(fStep->GetPostStepPoint()->GetProcessDefinedStep() != 0){
|
||||
G4cout << " "
|
||||
<< std::setw(10)
|
||||
<< fStep->GetPostStepPoint()->GetProcessDefinedStep()
|
||||
->GetProcessName();
|
||||
} else {
|
||||
G4cout << " UserLimit";
|
||||
}
|
||||
|
||||
G4cout << G4endl;
|
||||
|
||||
if( verboseLevel == 2 ){
|
||||
G4int tN2ndariesTot = fN2ndariesAtRestDoIt +
|
||||
fN2ndariesAlongStepDoIt +
|
||||
fN2ndariesPostStepDoIt;
|
||||
if(tN2ndariesTot>0){
|
||||
G4cout << " :----- List of 2ndaries - "
|
||||
<< "#SpawnInStep=" << std::setw(3) << tN2ndariesTot
|
||||
<< "(Rest=" << std::setw(2) << fN2ndariesAtRestDoIt
|
||||
<< ",Along=" << std::setw(2) << fN2ndariesAlongStepDoIt
|
||||
<< ",Post=" << std::setw(2) << fN2ndariesPostStepDoIt
|
||||
<< "), "
|
||||
<< "#SpawnTotal=" << std::setw(3) << (*fSecondary).size()
|
||||
<< " ---------------"
|
||||
<< G4endl;
|
||||
|
||||
for(size_t lp1=(*fSecondary).size()-tN2ndariesTot;
|
||||
lp1<(*fSecondary).size(); lp1++){
|
||||
G4cout << " : "
|
||||
<< std::setw(6)
|
||||
<< G4BestUnit((*fSecondary)[lp1]->GetPosition().x(),"Length")
|
||||
<< std::setw(6)
|
||||
<< G4BestUnit((*fSecondary)[lp1]->GetPosition().y(),"Length")
|
||||
<< std::setw(6)
|
||||
<< G4BestUnit((*fSecondary)[lp1]->GetPosition().z(),"Length")
|
||||
<< std::setw(6)
|
||||
<< G4BestUnit((*fSecondary)[lp1]->GetKineticEnergy(),"Energy")
|
||||
<< std::setw(10)
|
||||
<< (*fSecondary)[lp1]->GetDefinition()->GetParticleName();
|
||||
G4cout << G4endl;
|
||||
}
|
||||
|
||||
G4cout << " :-----------------------------"
|
||||
<< "----------------------------------"
|
||||
<< "-- EndOf2ndaries Info ---------------"
|
||||
<< G4endl;
|
||||
}
|
||||
}
|
||||
|
||||
}
|
||||
G4cout.precision(prec);
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
|
||||
void OpNoviceSteppingVerbose::TrackingStarted()
|
||||
{
|
||||
|
||||
CopyState();
|
||||
G4int prec = G4cout.precision(3);
|
||||
if( verboseLevel > 0 ){
|
||||
|
||||
G4cout << std::setw( 5) << "Step#" << " "
|
||||
<< std::setw( 6) << "X" << " "
|
||||
<< std::setw( 6) << "Y" << " "
|
||||
<< std::setw( 6) << "Z" << " "
|
||||
<< std::setw( 9) << "KineE" << " "
|
||||
<< std::setw( 9) << "dEStep" << " "
|
||||
<< std::setw(10) << "StepLeng"
|
||||
<< std::setw(10) << "TrakLeng"
|
||||
<< std::setw(10) << "Volume" << " "
|
||||
<< std::setw(10) << "Process" << G4endl;
|
||||
|
||||
G4cout << std::setw( 5) << fTrack->GetCurrentStepNumber() << " "
|
||||
<< std::setw( 6) << G4BestUnit(fTrack->GetPosition().x(),"Length")
|
||||
<< std::setw( 6) << G4BestUnit(fTrack->GetPosition().y(),"Length")
|
||||
<< std::setw( 6) << G4BestUnit(fTrack->GetPosition().z(),"Length")
|
||||
<< std::setw( 6) << G4BestUnit(fTrack->GetKineticEnergy(),"Energy")
|
||||
<< std::setw( 6) << G4BestUnit(fStep->GetTotalEnergyDeposit(),"Energy")
|
||||
<< std::setw( 6) << G4BestUnit(fStep->GetStepLength(),"Length")
|
||||
<< std::setw( 6) << G4BestUnit(fTrack->GetTrackLength(),"Length")
|
||||
<< " ";
|
||||
|
||||
if(fTrack->GetNextVolume()){
|
||||
G4cout << std::setw(10) << fTrack->GetVolume()->GetName();
|
||||
} else {
|
||||
G4cout << "OutOfWorld";
|
||||
}
|
||||
G4cout << " initStep" << G4endl;
|
||||
}
|
||||
G4cout.precision(prec);
|
||||
}
|
||||
|
||||
//....oooOO0OOooo........oooOO0OOooo........oooOO0OOooo........oooOO0OOooo......
|
||||
@@ -1,3 +1,14 @@
|
||||
#
|
||||
# Macro file for the initialization phase of "OpNovice.cc"
|
||||
#
|
||||
# Sets some default verbose
|
||||
# and initializes the graphic.
|
||||
#
|
||||
/control/verbose 2
|
||||
/run/verbose 2
|
||||
#
|
||||
/run/initialize
|
||||
#
|
||||
# Use this open statement to create an OpenGL view:
|
||||
/vis/open OGL 600x600-0+0
|
||||
#
|
||||
|
||||
Reference in New Issue
Block a user