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geant4/examples/advanced/nanobeam/nanobeam.out
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!!! WARNING - FPE detection is activated !!!
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Geant4 version Name: geant4-09-06-ref-00 (30-November-2012)
Copyright : Geant4 Collaboration
Reference : NIM A 506 (2003), 250-303
WWW : http://cern.ch/geant4
*************************************************************
***** Table : Nb of materials = 1 *****
Material: Vacuum density: 0.000 kg/m3 RadL: 204727512.315 pc Nucl.Int.Length: 114561548.020 pc Imean: 19.200 eV temperature: 273.15 K pressure: 1.00 atm
---> Element: Vacuum ( ) Z = 1.0 N = 1.0 A = 1.01 g/mole
---> Isotope: 1 Z = 1 N = 1 A = 1.01 g/mole abundance: 99.99 %
---> Isotope: 2 Z = 1 N = 2 A = 2.01 g/mole abundance: 0.01 %
ElmMassFraction: 100.00 % ElmAbundance 100.00 %
### NIST DataBase for Materials is used
PhysicsList::SetCuts:CutLength : 1 um
**********************
**** CONFIGURATION ***
**********************
=====> You have selected :
-> Square quadrupole field
G1 (T/m) = -11.9646
G2 (T/m) = 16.4947
G3 (T/m) = 9.86677
G4 (T/m) = -6.24449
phot: for gamma SubType= 12
LambdaPrime table from 200 keV to 10 TeV in 54 bins
===== EM models for the G4Region DefaultRegionForTheWorld ======
PhotoElectric : Emin= 0 eV Emax= 10 TeV AngularGenSauterGavrila
compt: for gamma SubType= 13
Lambda table from 100 eV to 1 MeV in 28 bins, spline: 1
LambdaPrime table from 1 MeV to 10 TeV in 49 bins
===== EM models for the G4Region DefaultRegionForTheWorld ======
Klein-Nishina : Emin= 0 eV Emax= 10 TeV
conv: for gamma SubType= 14
Lambda table from 1.022 MeV to 10 TeV in 49 bins, spline: 1
===== EM models for the G4Region DefaultRegionForTheWorld ======
BetheHeitler : Emin= 0 eV Emax= 80 GeV
BetheHeitlerLPM : Emin= 80 GeV Emax= 10 TeV
msc: for e- SubType= 10
RangeFactor= 0.04, stepLimitType: 1, latDisplacement: 1
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc95 : Emin= 0 eV Emax= 10 TeV Table with 77 bins Emin= 100 eV Emax= 10 TeV
eIoni: for e- SubType= 2
dE/dx and range tables from 100 eV to 10 TeV in 77 bins
Lambda tables from threshold to 10 TeV in 77 bins, spline: 1
finalRange(mm)= 1, dRoverRange= 0.2, integral: 1, fluct: 1, linLossLimit= 0.01
===== EM models for the G4Region DefaultRegionForTheWorld ======
MollerBhabha : Emin= 0 eV Emax= 10 TeV
eBrem: for e- SubType= 3
dE/dx and range tables from 100 eV to 10 TeV in 77 bins
Lambda tables from threshold to 10 TeV in 77 bins, spline: 1
LPM flag: 1 for E > 1 GeV
===== EM models for the G4Region DefaultRegionForTheWorld ======
eBremSB : Emin= 0 eV Emax= 1 GeV DipBustGen
eBremLPM : Emin= 1 GeV Emax= 10 TeV DipBustGen
msc: for e+ SubType= 10
RangeFactor= 0.04, stepLimitType: 1, latDisplacement: 1
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc95 : Emin= 0 eV Emax= 10 TeV Table with 77 bins Emin= 100 eV Emax= 10 TeV
eIoni: for e+ SubType= 2
dE/dx and range tables from 100 eV to 10 TeV in 77 bins
Lambda tables from threshold to 10 TeV in 77 bins, spline: 1
finalRange(mm)= 1, dRoverRange= 0.2, integral: 1, fluct: 1, linLossLimit= 0.01
===== EM models for the G4Region DefaultRegionForTheWorld ======
MollerBhabha : Emin= 0 eV Emax= 10 TeV
eBrem: for e+ SubType= 3
dE/dx and range tables from 100 eV to 10 TeV in 77 bins
Lambda tables from threshold to 10 TeV in 77 bins, spline: 1
LPM flag: 1 for E > 1 GeV
===== EM models for the G4Region DefaultRegionForTheWorld ======
eBremSB : Emin= 0 eV Emax= 1 GeV DipBustGen
eBremLPM : Emin= 1 GeV Emax= 10 TeV DipBustGen
annihil: for e+ SubType= 5
===== EM models for the G4Region DefaultRegionForTheWorld ======
eplus2gg : Emin= 0 eV Emax= 10 TeV
msc: for proton SubType= 10
RangeFactor= 0.2, stepLimitType: 0, latDisplacement: 1
===== EM models for the G4Region DefaultRegionForTheWorld ======
UrbanMsc95 : Emin= 0 eV Emax= 10 TeV Table with 77 bins Emin= 100 eV Emax= 10 TeV
hIoni: for proton SubType= 2
dE/dx and range tables from 100 eV to 10 TeV in 77 bins
Lambda tables from threshold to 10 TeV in 77 bins, spline: 1
finalRange(mm)= 0.1, dRoverRange= 0.2, integral: 1, fluct: 1, linLossLimit= 0.01
===== EM models for the G4Region DefaultRegionForTheWorld ======
Bragg : Emin= 0 eV Emax= 2 MeV
BetheBloch : Emin= 2 MeV Emax= 10 TeV
hBrems: for proton SubType= 3
dE/dx and range tables from 100 eV to 10 TeV in 77 bins
Lambda tables from threshold to 10 TeV in 77 bins, spline: 1
===== EM models for the G4Region DefaultRegionForTheWorld ======
hBrem : Emin= 0 eV Emax= 10 TeV
hPairProd: for proton SubType= 4
dE/dx and range tables from 100 eV to 10 TeV in 77 bins
Lambda tables from threshold to 10 TeV in 77 bins, spline: 1
===== EM models for the G4Region DefaultRegionForTheWorld ======
hPairProd : Emin= 0 eV Emax= 10 TeV
========= Table of registered couples ==============================
Index : 0 used in the geometry : Yes recalculation needed : No
Material : Vacuum
Range cuts : gamma 1 um e- 1 um e+ 1 um proton 1 um
Energy thresholds : gamma 990 eV e- 990 eV e+ 990 eV proton 100 eV
Region(s) which use this couple :
DefaultRegionForTheWorld
====================================================================
-> Event= 1: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.09 PHI(mrad)= -0.09 E0(MeV)= 2.9997
=>IMAGE : X(microns)=-3.5866545597483 Y(microns)=-0.45891792353819 THETA(mrad)=-5.8367646106921 PHI(mrad)=-9.1305837919058
-> Event= 2: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.03 PHI(mrad)= -0.09 E0(MeV)= 2.9997
=>IMAGE : X(microns)=-0.48867014724698 Y(microns)=-0.30129376677843 THETA(mrad)=-1.9441077505043 PHI(mrad)=-9.1297088270257
-> Event= 3: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.03 PHI(mrad)= -0.09 E0(MeV)= 2.9997
=>IMAGE : X(microns)=0.48867014724698 Y(microns)=-0.30129376677843 THETA(mrad)=1.9441077505043 PHI(mrad)=-9.1297088270257
-> Event= 4: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.09 PHI(mrad)= -0.09 E0(MeV)= 2.9997
=>IMAGE : X(microns)=3.5866545597483 Y(microns)=-0.45891792353819 THETA(mrad)=5.8367646106921 PHI(mrad)=-9.1305837919058
-> Event= 5: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.09 PHI(mrad)= -0.03 E0(MeV)= 2.9997
=>IMAGE : X(microns)=-3.3399391205705 Y(microns)=-0.11875830381564 THETA(mrad)=-5.8363616551639 PHI(mrad)=-3.043453017084
-> Event= 6: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.03 PHI(mrad)= -0.03 E0(MeV)= 2.9997
=>IMAGE : X(microns)=-0.40644525944264 Y(microns)=-0.066253101076515 THETA(mrad)=-1.9439735806466 PHI(mrad)=-3.0431621635462
-> Event= 7: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.03 PHI(mrad)= -0.03 E0(MeV)= 2.9997
=>IMAGE : X(microns)=0.40644525944264 Y(microns)=-0.066253101076515 THETA(mrad)=1.9439735806466 PHI(mrad)=-3.0431621635462
-> Event= 8: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.09 PHI(mrad)= -0.03 E0(MeV)= 2.9997
=>IMAGE : X(microns)=3.3399391205705 Y(microns)=-0.11875830381564 THETA(mrad)=5.8363616551639 PHI(mrad)=-3.043453017084
-> Event= 9: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.09 PHI(mrad)= 0.03 E0(MeV)= 2.9997
=>IMAGE : X(microns)=-3.3399391205705 Y(microns)=0.11875830381564 THETA(mrad)=-5.8363616551639 PHI(mrad)=3.043453017084
-> Event= 10: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.03 PHI(mrad)= 0.03 E0(MeV)= 2.9997
=>IMAGE : X(microns)=-0.40644525944264 Y(microns)=0.066253101076515 THETA(mrad)=-1.9439735806466 PHI(mrad)=3.0431621635462
-> Event= 11: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.03 PHI(mrad)= 0.03 E0(MeV)= 2.9997
=>IMAGE : X(microns)=0.40644525944264 Y(microns)=0.066253101076515 THETA(mrad)=1.9439735806466 PHI(mrad)=3.0431621635462
-> Event= 12: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.09 PHI(mrad)= 0.03 E0(MeV)= 2.9997
=>IMAGE : X(microns)=3.3399391205705 Y(microns)=0.11875830381564 THETA(mrad)=5.8363616551639 PHI(mrad)=3.043453017084
-> Event= 13: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.09 PHI(mrad)= 0.09 E0(MeV)= 2.9997
=>IMAGE : X(microns)=-3.5866545597483 Y(microns)=0.45891792353819 THETA(mrad)=-5.8367646106921 PHI(mrad)=9.1305837919058
-> Event= 14: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.03 PHI(mrad)= 0.09 E0(MeV)= 2.9997
=>IMAGE : X(microns)=-0.48867014724698 Y(microns)=0.30129376677843 THETA(mrad)=-1.9441077505043 PHI(mrad)=9.1297088270257
-> Event= 15: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.03 PHI(mrad)= 0.09 E0(MeV)= 2.9997
=>IMAGE : X(microns)=0.48867014724698 Y(microns)=0.30129376677843 THETA(mrad)=1.9441077505043 PHI(mrad)=9.1297088270257
-> Event= 16: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.09 PHI(mrad)= 0.09 E0(MeV)= 2.9997
=>IMAGE : X(microns)=3.5866545597483 Y(microns)=0.45891792353819 THETA(mrad)=5.8367646106921 PHI(mrad)=9.1305837919058
-> Event= 17: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.09 PHI(mrad)= -0.09 E0(MeV)= 3.0003
=>IMAGE : X(microns)=-1.7197977975477 Y(microns)=-0.11884430906302 THETA(mrad)=-5.8315817500863 PHI(mrad)=-9.1249020093158
-> Event= 18: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.03 PHI(mrad)= -0.09 E0(MeV)= 3.0003
=>IMAGE : X(microns)=0.13304661402201 Y(microns)=0.038548970509993 THETA(mrad)=-1.942381313233 PHI(mrad)=-9.1240304222666
-> Event= 19: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.03 PHI(mrad)= -0.09 E0(MeV)= 3.0003
=>IMAGE : X(microns)=-0.13304661402201 Y(microns)=0.038548970509993 THETA(mrad)=1.942381313233 PHI(mrad)=-9.1240304222666
-> Event= 20: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.09 PHI(mrad)= -0.09 E0(MeV)= 3.0003
=>IMAGE : X(microns)=1.7197977975477 Y(microns)=-0.11884430906302 THETA(mrad)=5.8315817500863 PHI(mrad)=-9.1249020093158
-> Event= 21: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.09 PHI(mrad)= -0.03 E0(MeV)= 3.0003
=>IMAGE : X(microns)=-1.4733250818673 Y(microns)=-0.0054681854132037 THETA(mrad)=-5.8311792824778 PHI(mrad)=-3.0415592695373
-> Event= 22: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.03 PHI(mrad)= -0.03 E0(MeV)= 3.0003
=>IMAGE : X(microns)=0.21502188293023 Y(microns)=0.046995422524609 THETA(mrad)=-1.9422478749168 PHI(mrad)=-3.0412673422139
-> Event= 23: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.03 PHI(mrad)= -0.03 E0(MeV)= 3.0003
=>IMAGE : X(microns)=-0.21502188293023 Y(microns)=0.046995422524609 THETA(mrad)=1.9422478749168 PHI(mrad)=-3.0412673422139
-> Event= 24: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.09 PHI(mrad)= -0.03 E0(MeV)= 3.0003
=>IMAGE : X(microns)=1.4733250818673 Y(microns)=-0.0054681854132037 THETA(mrad)=5.8311792824778 PHI(mrad)=-3.0415592695373
-> Event= 25: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.09 PHI(mrad)= 0.03 E0(MeV)= 3.0003
=>IMAGE : X(microns)=-1.4733250818673 Y(microns)=0.0054681854132037 THETA(mrad)=-5.8311792824778 PHI(mrad)=3.0415592695373
-> Event= 26: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.03 PHI(mrad)= 0.03 E0(MeV)= 3.0003
=>IMAGE : X(microns)=0.21502188293023 Y(microns)=-0.046995422524609 THETA(mrad)=-1.9422478749168 PHI(mrad)=3.0412673422139
-> Event= 27: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.03 PHI(mrad)= 0.03 E0(MeV)= 3.0003
=>IMAGE : X(microns)=-0.21502188293023 Y(microns)=-0.046995422524609 THETA(mrad)=1.9422478749168 PHI(mrad)=3.0412673422139
-> Event= 28: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.09 PHI(mrad)= 0.03 E0(MeV)= 3.0003
=>IMAGE : X(microns)=1.4733250818673 Y(microns)=0.0054681854132037 THETA(mrad)=5.8311792824778 PHI(mrad)=3.0415592695373
-> Event= 29: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.09 PHI(mrad)= 0.09 E0(MeV)= 3.0003
=>IMAGE : X(microns)=-1.7197977975477 Y(microns)=0.11884430906302 THETA(mrad)=-5.8315817500863 PHI(mrad)=9.1249020093158
-> Event= 30: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= -0.03 PHI(mrad)= 0.09 E0(MeV)= 3.0003
=>IMAGE : X(microns)=0.13304661402201 Y(microns)=-0.038548970509993 THETA(mrad)=-1.942381313233 PHI(mrad)=9.1240304222666
-> Event= 31: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.03 PHI(mrad)= 0.09 E0(MeV)= 3.0003
=>IMAGE : X(microns)=-0.13304661402201 Y(microns)=-0.038548970509993 THETA(mrad)=1.942381313233 PHI(mrad)=9.1240304222666
-> Event= 32: X0(mm)= 0 X0(mm) = 0 Z0(m) = -8.87 THETA(mrad)= 0.09 PHI(mrad)= 0.09 E0(MeV)= 3.0003
=>IMAGE : X(microns)=1.7197977975477 Y(microns)=0.11884430906302 THETA(mrad)=5.8315817500863 PHI(mrad)=9.1249020093158
===> NANOBEAM LINE INTRINSIC ABERRATION COEFFICIENTS (units of micrometer and mrad) :
<x|theta>=
-0.09538872658999
<x|theta*delta>=
-2071.1371028243
<x|theta^3>=
3270.7720773617
<x|theta*phi^2>=
380.03622422018
<x|x>=
64.763635034776
<y|phi>=
-0.04005555840396
<y|phi*delta>=
-377.46611724383
<y|theta^2*phi>=
242.97265509283
<y|phi^3>=
158.14651119455
<y|y>=
101.40563117133