source: trunk/source/geometry/magneticfield/src/G4EqEMFieldWithSpin.cc

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27// $Id: G4EqEMFieldWithSpin.cc,v 1.9 2010/07/14 10:00:36 gcosmo Exp $
28// GEANT4 tag $Name: field-V09-03-03 $
29//
30//
31//  This is the standard right-hand side for equation of motion.
32//
33//  30.08.2007 Chris Gong, Peter Gumplinger
34//  14.02.2009 Kevin Lynch
35//  06.11.2009 Hiromi Iinuma
36//
37// -------------------------------------------------------------------
38
39#include "G4EqEMFieldWithSpin.hh"
40#include "G4ElectroMagneticField.hh"
41#include "G4ThreeVector.hh"
42#include "globals.hh"
43
44G4EqEMFieldWithSpin::G4EqEMFieldWithSpin(G4ElectroMagneticField *emField )
45  : G4EquationOfMotion( emField ), fElectroMagCof(0.), fMassCof(0.),
46    omegac(0.), anomaly(0.0011659208), pcharge(0.), E(0.), gamma(0.), beta(0.)
47{
48}
49
50G4EqEMFieldWithSpin::~G4EqEMFieldWithSpin()
51{
52} 
53
54void 
55G4EqEMFieldWithSpin::SetChargeMomentumMass(G4double particleCharge, // e+ units
56                                            G4double MomentumXc,
57                                            G4double particleMass)
58{
59   fElectroMagCof =  eplus*particleCharge*c_light ;
60   fMassCof = particleMass*particleMass ;
61
62   omegac = 0.105658387*GeV/particleMass * 2.837374841e-3*(rad/cm/kilogauss);
63
64   pcharge = particleCharge;
65
66   E = std::sqrt(sqr(MomentumXc)+sqr(particleMass));
67   beta  = MomentumXc/E;
68   gamma = E/particleMass;
69
70}
71
72void
73G4EqEMFieldWithSpin::EvaluateRhsGivenB(const G4double y[],
74                                       const G4double Field[],
75                                             G4double dydx[] ) const
76{
77
78   // Components of y:
79   //    0-2 dr/ds,
80   //    3-5 dp/ds - momentum derivatives
81   //    9-11 dSpin/ds = (1/beta) dSpin/dt - spin derivatives
82
83   // The BMT equation, following J.D.Jackson, Classical
84   // Electrodynamics, Second Edition,
85   // dS/dt = (e/mc) S \cross
86   //              [ (g/2-1 +1/\gamma) B
87   //               -(g/2-1)\gamma/(\gamma+1) (\beta \cdot B)\beta
88   //               -(g/2-\gamma/(\gamma+1) \beta \cross E ]
89   // where
90   // S = \vec{s}, where S^2 = 1
91   // B = \vec{B}
92   // \beta = \vec{\beta} = \beta \vec{u} with u^2 = 1
93   // E = \vec{E}
94
95   G4double pSquared = y[3]*y[3] + y[4]*y[4] + y[5]*y[5] ;
96
97   G4double Energy   = std::sqrt( pSquared + fMassCof );
98   G4double cof2     = Energy/c_light ;
99
100   G4double pModuleInverse  = 1.0/std::sqrt(pSquared) ;
101
102   G4double inverse_velocity = Energy * pModuleInverse / c_light;
103
104   G4double cof1     = fElectroMagCof*pModuleInverse ;
105
106   dydx[0] = y[3]*pModuleInverse ;                         
107   dydx[1] = y[4]*pModuleInverse ;                         
108   dydx[2] = y[5]*pModuleInverse ;                       
109
110   dydx[3] = cof1*(cof2*Field[3] + (y[4]*Field[2] - y[5]*Field[1])) ;
111   
112   dydx[4] = cof1*(cof2*Field[4] + (y[5]*Field[0] - y[3]*Field[2])) ; 
113 
114   dydx[5] = cof1*(cof2*Field[5] + (y[3]*Field[1] - y[4]*Field[0])) ; 
115   
116   dydx[6] = dydx[8] = 0.;//not used
117
118   // Lab Time of flight
119   dydx[7] = inverse_velocity;
120   
121   G4ThreeVector BField(Field[0],Field[1],Field[2]);
122   G4ThreeVector EField(Field[3],Field[4],Field[5]);
123
124   EField /= c_light;
125
126   G4ThreeVector u(y[3], y[4], y[5]);
127   u *= pModuleInverse;
128
129   G4double udb = anomaly*beta*gamma/(1.+gamma) * (BField * u);
130   G4double ucb = (anomaly+1./gamma)/beta;
131   G4double uce = anomaly + 1./(gamma+1.);
132
133   G4ThreeVector Spin(y[9],y[10],y[11]);
134
135   G4ThreeVector dSpin
136     = pcharge*omegac*( ucb*(Spin.cross(BField))-udb*(Spin.cross(u))
137                               // from Jackson
138                               // -uce*Spin.cross(u.cross(EField)) );
139                               // but this form has one less operation
140                      - uce*(u*(Spin*EField) - EField*(Spin*u)) );
141
142   dydx[ 9] = dSpin.x();
143   dydx[10] = dSpin.y();
144   dydx[11] = dSpin.z();
145
146   return ;
147}
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