Geant4 9.6.0
Toolkit for the simulation of the passage of particles through matter
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G4GammaXTRadiator.hh
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26//
27// $Id$
28//
29//
30///////////////////////////////////////////////////////////////////////////
31//
32// Rough process describing a radiator of X-ray transition radiation.
33// Thicknesses of plates and gas gaps are distributed according to gamma
34// distribution. x are thicknesses of plates or gas gaps:
35//
36// p(x) = (alpha/<x>)^alpha * x^(alpha-1) * std::exp(-alpha*x/<x>) / G(alpha)
37//
38// G(alpha) is Euler's gamma function.
39// Plates have mean <x> = fPlateThick > 0 and power alpha = fAlphaPlate > 0 :
40// Gas gaps have mean <x> = fGasThick > 0 and power alpha = fAlphaGas > 0 :
41// We suppose that:
42// formation zone ~ mean thickness << absorption length
43// for each material and in the range 1-100 keV. This allows us to simplify
44// interference effects in radiator stack (GetStackFactor method).
45//
46//
47// History:
48// 21.01.02 V. Grichine, first version
49//
50
51
52#ifndef G4GammaXTRadiator_h
53#define G4GammaXTRadiator_h 1
54
55#include "G4VXTRenergyLoss.hh"
56
58{
59public:
60
65 const G4String & processName = "XTRgammaRadiator");
67
68 // Pure virtual function from base class
69
70 G4double GetStackFactor( G4double energy, G4double gamma, G4double varAngle);
71
72private:
73
74};
75
76#endif
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double G4double
Definition: G4Types.hh:64
int G4int
Definition: G4Types.hh:66
G4double GetStackFactor(G4double energy, G4double gamma, G4double varAngle)