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G4PSCellFluxForCylinder3D.cc
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25 //
26 //
27 //
28 // G4PSCellFluxForCylinder3D
30 #include "G4PhysicalConstants.hh"
31 #include "G4SystemOfUnits.hh"
32 
34 // (Description)
35 // This is a primitive scorer class for 3D scoring cell flux.
36 // The Cell Flux is defined by a sum of track length divided
37 // by the geometry volume, where all of the tracks in the geometry
38 // are taken into account. e.g. the unit of Cell Flux is mm/mm3.
39 //
40 //
41 // If you want to score only tracks passing through the geometry volume,
42 // please use G4PSPassageCellFlux3D.
43 //
44 //
45 // Created: 2007-08-14 Tsukasa ASO
46 // 2010-07-22 Introduce Unit specification.
47 // 2011-03-24 Give Size and Segmentation for relicated volume in cylinder.
48 //
50 
52  G4int ni, G4int nj, G4int nk,
53  G4int depi, G4int depj, G4int depk)
54  :G4PSCellFlux3D(name,ni,nj,nk,depi,depj,depk)
55 {
56  nSegment[0] = nSegment[1] = nSegment[2] = 0;
57 }
58 
60  G4int ni, G4int nj, G4int nk,
61  G4int depi, G4int depj, G4int depk)
62  :G4PSCellFlux3D(name,unit,ni,nj,nk,depi,depj,depk)
63 {
64  nSegment[0] = nSegment[1] = nSegment[2] = 0;
65 }
66 
68 {;}
69 
71  cylinderSize.setX(dz); //Z Phi R
72  cylinderSize.setY(twopi); //Z Phi R
73  cylinderSize.setZ(dr); //Z Phi R
74 }
76  nSegment[0] = nSeg[0]; // Z
77  nSegment[1] = nSeg[1]; // Phi
78  nSegment[2] = nSeg[2]; // R
79 }
80 
82  G4double r0 = (cylinderSize[2]/nSegment[2])*(idx);
83  G4double r1 = (cylinderSize[2]/nSegment[2])*(idx+1);
84  G4double dRArea = (r1*r1-r0*r0)*pi;
85 
86  // cylinderSize is given in Half Size
87  G4double fullz = cylinderSize[0]/nSegment[0]*2.;
88  G4double phiRatio = 1./nSegment[1];
89  G4double v = dRArea*fullz*phiRatio;
90 
91  if ( verboseLevel > 9 ){
92  G4cout << " r0= " <<r0/cm <<" r1= " << r1/cm<<" fullz="<<fullz/cm<<G4endl;
93  G4cout << " idx= " <<idx <<" v(cm3)= " << v/cm3<<G4endl;
94  }
95 
96  return v;
97 }