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Geant4/geometry/magneticfield/src/G4Mag_SpinEqRhs.cc

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Differences between /geometry/magneticfield/src/G4Mag_SpinEqRhs.cc (Version 11.3.0) and /geometry/magneticfield/src/G4Mag_SpinEqRhs.cc (Version 9.1.p2)


  1 //                                                  1 //
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 25 //                                                 25 //
 26 // G4Mag_SpinEqRhs implementation              << 
 27 //                                                 26 //
 28 // Created: J.Apostolakis, P.Gumplinger - 08.0 <<  27 // $Id: G4Mag_SpinEqRhs.cc,v 1.12 2006/06/29 18:24:39 gunter Exp $
                                                   >>  28 // GEANT4 tag $Name: geant4-09-01-patch-02 $
                                                   >>  29 //
                                                   >>  30 // This is the standard right-hand side for equation of motion.
                                                   >>  31 // This version of the right-hand side includes the three components
                                                   >>  32 // of the particle's spin.
                                                   >>  33 //
                                                   >>  34 //            J. Apostolakis, February 8th, 1999
                                                   >>  35 //            P. Gumplinger,  February 8th, 1999
                                                   >>  36 //            D. Cote-Ahern, P. Gumplinger,  April 11th, 2001
                                                   >>  37 //
 29 // -------------------------------------------     38 // --------------------------------------------------------------------
 30                                                    39 
 31 #include "G4Mag_SpinEqRhs.hh"                      40 #include "G4Mag_SpinEqRhs.hh"
 32 #include "G4PhysicalConstants.hh"              << 
 33 #include "G4SystemOfUnits.hh"                  << 
 34 #include "G4MagneticField.hh"                      41 #include "G4MagneticField.hh"
 35 #include "G4ThreeVector.hh"                        42 #include "G4ThreeVector.hh"
 36                                                    43 
 37 G4Mag_SpinEqRhs::G4Mag_SpinEqRhs( G4MagneticFi     44 G4Mag_SpinEqRhs::G4Mag_SpinEqRhs( G4MagneticField* MagField )
 38   : G4Mag_EqRhs( MagField )                    <<  45   : G4Mag_EqRhs( MagField ) 
 39 {                                                  46 {
                                                   >>  47    anomaly = 1.165923e-3;
 40 }                                                  48 }
 41                                                    49 
 42 G4Mag_SpinEqRhs::~G4Mag_SpinEqRhs() = default; <<  50 G4Mag_SpinEqRhs::~G4Mag_SpinEqRhs() {}
 43                                                    51 
 44 void                                               52 void
 45 G4Mag_SpinEqRhs::SetChargeMomentumMass(G4Charg <<  53 G4Mag_SpinEqRhs::SetChargeMomentumMass(G4double particleCharge, // in e+ units
 46                                        G4doubl     54                                        G4double MomentumXc,
 47                                        G4doubl <<  55                                        G4double mass)
 48 {                                                  56 {
 49    G4Mag_EqRhs::SetChargeMomentumMass( particl <<  57    //  To set fCof_val 
                                                   >>  58    G4Mag_EqRhs::SetChargeMomentumMass(particleCharge, MomentumXc, mass);
 50                                                    59 
 51    charge = particleCharge.GetCharge();        <<  60    omegac = 0.105658387*GeV/mass * 2.837374841e-3*(rad/cm/kilogauss);
 52    mass      = particleMass;                   << 
 53    magMoment = particleCharge.GetMagneticDipol << 
 54    spin      = particleCharge.GetSpin();       << 
 55                                                << 
 56    omegac = (eplus/mass)*c_light;              << 
 57                                                << 
 58    G4double muB = 0.5*eplus*hbar_Planck/(mass/ << 
 59                                                << 
 60    G4double g_BMT;                             << 
 61    if ( spin != 0. )                           << 
 62    {                                           << 
 63      g_BMT = (std::abs(magMoment)/muB)/spin;   << 
 64    }                                           << 
 65    else                                        << 
 66    {                                           << 
 67      g_BMT = 2.;                               << 
 68    }                                           << 
 69                                                    61 
 70    anomaly = (g_BMT - 2.)/2.;                  <<  62    ParticleCharge = particleCharge;
 71                                                    63 
 72    G4double E = std::sqrt(sqr(MomentumXc)+sqr( <<  64    E = std::sqrt(sqr(MomentumXc)+sqr(mass));
 73    beta  = MomentumXc/E;                           65    beta  = MomentumXc/E;
 74    gamma = E/mass;                                 66    gamma = E/mass;
                                                   >>  67 
 75 }                                                  68 }
 76                                                    69 
 77 void                                               70 void
 78 G4Mag_SpinEqRhs::EvaluateRhsGivenB( const G4do     71 G4Mag_SpinEqRhs::EvaluateRhsGivenB( const G4double y[],
 79                                     const G4do <<  72                   const G4double B[3],
 80                                           G4do <<  73             G4double dydx[] ) const
 81 {                                                  74 {
 82    G4double momentum_mag_square = sqr(y[3]) +      75    G4double momentum_mag_square = sqr(y[3]) + sqr(y[4]) + sqr(y[5]);
 83    G4double inv_momentum_magnitude = 1.0 / std     76    G4double inv_momentum_magnitude = 1.0 / std::sqrt( momentum_mag_square );
 84    G4double cof = FCof()*inv_momentum_magnitud     77    G4double cof = FCof()*inv_momentum_magnitude;
 85                                                    78 
 86    dydx[0] = y[3] * inv_momentum_magnitude;        79    dydx[0] = y[3] * inv_momentum_magnitude;       //  (d/ds)x = Vx/V
 87    dydx[1] = y[4] * inv_momentum_magnitude;        80    dydx[1] = y[4] * inv_momentum_magnitude;       //  (d/ds)y = Vy/V
 88    dydx[2] = y[5] * inv_momentum_magnitude;        81    dydx[2] = y[5] * inv_momentum_magnitude;       //  (d/ds)z = Vz/V
 89                                                <<  82    dydx[3] = cof*(y[4]*B[2] - y[5]*B[1]) ;   // Ax = a*(Vy*Bz - Vz*By)
 90    if (charge == 0.)                           <<  83    dydx[4] = cof*(y[5]*B[0] - y[3]*B[2]) ;   // Ay = a*(Vz*Bx - Vx*Bz)
 91    {                                           <<  84    dydx[5] = cof*(y[3]*B[1] - y[4]*B[0]) ;   // Az = a*(Vx*By - Vy*Bx)
 92       dydx[3] = 0.;                            << 
 93       dydx[4] = 0.;                            << 
 94       dydx[5] = 0.;                            << 
 95    }                                           << 
 96    else                                        << 
 97    {                                           << 
 98       dydx[3] = cof*(y[4]*B[2] - y[5]*B[1]) ;  << 
 99       dydx[4] = cof*(y[5]*B[0] - y[3]*B[2]) ;  << 
100       dydx[5] = cof*(y[3]*B[1] - y[4]*B[0]) ;  << 
101    }                                           << 
102                                                    85 
103    G4ThreeVector u(y[3], y[4], y[5]);              86    G4ThreeVector u(y[3], y[4], y[5]);
104    u *= inv_momentum_magnitude;                    87    u *= inv_momentum_magnitude; 
105                                                    88 
106    G4ThreeVector BField(B[0],B[1],B[2]);           89    G4ThreeVector BField(B[0],B[1],B[2]);
107                                                    90 
108    G4double udb = anomaly*beta*gamma/(1.+gamma     91    G4double udb = anomaly*beta*gamma/(1.+gamma) * (BField * u); 
109    G4double ucb = (anomaly+1./gamma)/beta;         92    G4double ucb = (anomaly+1./gamma)/beta;
110                                                    93 
111    // Initialise the values of dydx that we do     94    // Initialise the values of dydx that we do not update.
112    dydx[6] = dydx[7] = dydx[8] = 0.0;              95    dydx[6] = dydx[7] = dydx[8] = 0.0;
113                                                    96 
114    G4ThreeVector Spin(y[9],y[10],y[11]);           97    G4ThreeVector Spin(y[9],y[10],y[11]);
                                                   >>  98    G4ThreeVector dSpin;
115                                                    99 
116    G4double pcharge;                           << 100    dSpin = ParticleCharge*omegac*(ucb*(Spin.cross(BField))-udb*(Spin.cross(u)));
117    if (charge == 0.)                           << 
118    {                                           << 
119      pcharge = 1.;                             << 
120    }                                           << 
121    else                                        << 
122    {                                           << 
123      pcharge = charge;                         << 
124    }                                           << 
125                                                << 
126    G4ThreeVector dSpin(0.,0.,0.);              << 
127    if (Spin.mag2() != 0.)                      << 
128    {                                           << 
129      dSpin = pcharge*omegac*(ucb*(Spin.cross(B << 
130    }                                           << 
131                                                   101 
132    dydx[9] = dSpin.x();                        << 102    dydx[ 9] = dSpin.x();
133    dydx[10] = dSpin.y();                          103    dydx[10] = dSpin.y();
134    dydx[11] = dSpin.z();                          104    dydx[11] = dSpin.z();
135                                                   105 
136    return;                                     << 106    return ;
137 }                                                 107 }
138                                                   108