source: trunk/source/geometry/magneticfield/src/G4MonopoleEq.cc @ 1350

Last change on this file since 1350 was 1350, checked in by garnier, 13 years ago

update to last version 4.9.4

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26//
27// $Id: G4MonopoleEq.cc,v 1.2 2010/03/18 10:23:29 japost Exp $
28// GEANT4 tag $Name: field-V09-03-03 $
29//
30//
31//  This is the right-hand side for equation of motion for a
32//   magnetic charge in a combined Electro-Magnetic field
33//
34//  d(p_c)/ds=g{c-energyB_ - p_c x E}/pc
35//
36//  17.11.09   V.Grichine
37//
38// -------------------------------------------------------------------
39
40#include "G4MonopoleEq.hh"
41#include "globals.hh"
42
43void 
44G4MonopoleEq::SetChargeMomentumMass(G4double particleCharge, // e+ units
45                                            G4double,
46                                            G4double particleMass)
47{
48  fElectroMagCof =  eplus*particleCharge;  // no *c_light as for ususal q
49  fElectroMagCof /= 2*fine_structure_const;
50
51  fMassCof = particleMass*particleMass ; 
52}
53
54
55
56void
57G4MonopoleEq::EvaluateRhsGivenB(const G4double y[],
58                                        const G4double Field[],
59                                              G4double dydx[] ) const
60{
61
62   // Components of y:
63   //    0-2 dr/ds,
64   //    3-5 d(pc)/ds - momentum derivatives
65
66   G4double pSquared = y[3]*y[3] + y[4]*y[4] + y[5]*y[5] ;
67
68   G4double Energy   = std::sqrt( pSquared + fMassCof );
69   G4double cof2     = Energy*c_light ;
70
71   G4double pModuleInverse  = 1.0/std::sqrt(pSquared) ;
72
73   //  G4double inverse_velocity = Energy * c_light * pModuleInverse;
74   G4double inverse_velocity = Energy * pModuleInverse / c_light;
75
76   G4double cof1     = fElectroMagCof*pModuleInverse ;
77
78   //  G4double vDotE = y[3]*Field[3] + y[4]*Field[4] + y[5]*Field[5] ;
79
80   dydx[0] = y[3]*pModuleInverse ;                         
81   dydx[1] = y[4]*pModuleInverse ;                         
82   dydx[2] = y[5]*pModuleInverse ;                       
83
84   dydx[3] = cof1*(cof2*Field[0] - (y[4]*Field[5] - y[5]*Field[4])) ;
85   
86   dydx[4] = cof1*(cof2*Field[1] - (y[5]*Field[3] - y[3]*Field[5])) ; 
87 
88   dydx[5] = cof1*(cof2*Field[2] - (y[3]*Field[4] - y[4]*Field[3])) ; 
89
90   dydx[6] = 0.;//not used
91
92   // Lab Time of flight
93   dydx[7] = inverse_velocity;
94   return ;
95}
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