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  2. Dipole - Wikipedia

    en.wikipedia.org/wiki/Dipole

    The field of a point dipole has a particularly simple form, and the order-1 term in the multipole expansion is precisely the point dipole field. Although there are no known magnetic monopoles in nature, there are magnetic dipoles in the form of the quantum-mechanical spin associated with particles such as electrons (although the accurate ...

  3. Magnetic dipole - Wikipedia

    en.wikipedia.org/wiki/Magnetic_dipole

    Monopole moments have a 1/r rate of decrease, dipole moments have a 1/r 2 rate, quadrupole moments have a 1/r 3 rate, and so on. The higher the order, the faster the potential drops off. Since the lowest-order term observed in magnetic sources is the dipole term, it dominates at large distances.

  4. Magnetic moment - Wikipedia

    en.wikipedia.org/wiki/Magnetic_moment

    In electromagnetism, the magnetic moment or magnetic dipole moment is the combination of strength and orientation of a magnet or other object or system that exerts a magnetic field. The magnetic dipole moment of an object determines the magnitude of torque the object experiences in a given magnetic field. When the same magnetic field is applied ...

  5. Electric dipole moment - Wikipedia

    en.wikipedia.org/wiki/Electric_dipole_moment

    If we suppose the polarization of the dipoles was induced by an external field, the polarization field opposes the applied field and sometimes is called a depolarization field. [ 18 ] [ 19 ] In the case when the polarization is outside a spherical cavity, the field in the cavity due to the surrounding dipoles is in the same direction as the ...

  6. Mathematical descriptions of the electromagnetic field

    en.wikipedia.org/wiki/Mathematical_descriptions...

    Many times in the use and calculation of electric and magnetic fields, the approach used first computes an associated potential: the electric potential, , for the electric field, and the magnetic vector potential, A, for the magnetic field. The electric potential is a scalar field, while the magnetic potential is a vector field.

  7. Axial multipole moments - Wikipedia

    en.wikipedia.org/wiki/Axial_multipole_moments

    The electric potential of a point charge q located on the z-axis at = (Fig. 1) equals = = + ⁡.. If the radius r of the observation point is greater than a, we may factor out and expand the square root in powers of (/) < using Legendre polynomials = = (⁡) = (+) (⁡) where the axial multipole moments contain everything specific to a given charge distribution; the other parts of the electric ...

  8. Retarded potential - Wikipedia

    en.wikipedia.org/wiki/Retarded_potential

    Position vectors r and r′ used in the calculation. The starting point is Maxwell's equations in the potential formulation using the Lorenz gauge: =, = where φ(r, t) is the electric potential and A(r, t) is the magnetic vector potential, for an arbitrary source of charge density ρ(r, t) and current density J(r, t), and is the D'Alembert operator. [2]

  9. Magnetic vector potential - Wikipedia

    en.wikipedia.org/wiki/Magnetic_vector_potential

    The magnetic vector potential, , is a vector field, and the electric potential, , is a scalar field such that: [5] = , =, where is the magnetic field and is the electric field. In magnetostatics where there is no time-varying current or charge distribution , only the first equation is needed.