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geant4/source/geometry/magneticfield/include/G4Mag_EqRhs.hh
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//
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// $Id: G4Mag_EqRhs.hh,v 1.6 2001/07/11 09:59:09 gunter Exp $
// GEANT4 tag $Name: geant4-05-00 $
//
//
// class G4Mag_EqRhs
//
// Class description:
//
// The "standard" right-hand side for the equation of motion of a particle
// in a pure magnetic field.
// Others that might be required are:
// i) when using a moving reference frame ... or
// ii) extending for other forces, eg an electric field.
// History:
// - Created. J.Apostolakis, January 13th 1996
#ifndef G4_MAG_EQRHS_DEF
#define G4_MAG_EQRHS_DEF
#include "globals.hh"
#include "G4EquationOfMotion.hh"
#include "G4MagneticField.hh" // class G4MagneticField; not enough ??
class G4Mag_EqRhs : public G4EquationOfMotion
{
public: // with description
G4Mag_EqRhs( G4MagneticField *magField );
virtual ~G4Mag_EqRhs();
// Constructor and destructor. No actions.
virtual void EvaluateRhsGivenB( const G4double y[],
const G4double B[3],
G4double dydx[] ) const = 0;
// Given the value of the field "B", this function
// calculates the value of the derivative dydx.
// This is the _only_ function a subclass must define.
// The other two functions use Rhs_givenB.
inline G4double FCof() const;
virtual void SetChargeMomentumMass( G4double particleCharge, // in e+ units
G4double MomentumXc,
G4double mass);
private:
G4double fCof_val;
static const G4double fUnitConstant; // Set in G4Mag_EqRhs.cc
// to 0.299792458
// Coefficient in the Lorentz motion equation (Lorentz force), if the
// magnetic field B is in Tesla, the particle charge in units of the
// elementary (positron?) charge, the momentum P in MeV/c, and the
// space coordinates and path along the trajectory in mm .
};
inline
G4double G4Mag_EqRhs::FCof() const
{
return fCof_val;
}
#endif /* G4_MAG_EQRHS_DEF */