Classical electrodynamicsThis edition refines and improves the first edition. It treats the present experimental limits on the mass of photon and the status of linear superposition, and introduces many other innovations. 
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Page 169
current corresponds to charges in motion and is described by a current density J,
measured in units of positive charge crossing unit area per unit time, the direction
of motion of the charges denning the direction of J. In electrostatic units, current ...
current corresponds to charges in motion and is described by a current density J,
measured in units of positive charge crossing unit area per unit time, the direction
of motion of the charges denning the direction of J. In electrostatic units, current ...
Page 233
than the previous treatment of (tj), even though involving no new principles. We
present only the results, leaving the gory details to a problem for those readers
who enjoy such challenges. We begin with the microscopic current density, ^0 =
1^ ...
than the previous treatment of (tj), even though involving no new principles. We
present only the results, leaving the gory details to a problem for those readers
who enjoy such challenges. We begin with the microscopic current density, ^0 =
1^ ...
Page 472
To complete the specification of dynamical equations we must specify the relation
between the current density J and the fields E and B. For a simple conducting
medium of conductivity o\ Ohm's law applies, and the current density is J' = aE' ...
To complete the specification of dynamical equations we must specify the relation
between the current density J and the fields E and B. For a simple conducting
medium of conductivity o\ Ohm's law applies, and the current density is J' = aE' ...
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Contents
Introduction and Survey  1 
Introduction to Electrostatics  27 
BoundaryValue Problems  54 
Copyright  
18 other sections not shown
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4vector amplitude angle angular distribution angular momentum aperture approximation assumed atomic axis behavior Bessel functions boundary conditions bremsstrahlung calculation Chapter charge density charge q charged particle classical coefficients collision components conductor consider coordinates cross section current density cylinder defined dielectric constant differential diffraction dimensions dipole direction discussed effects electric and magnetic electric field electromagnetic fields electrons electrostatic energy loss expansion expression factor finite force frequency given Green function incident integral Lagrangian limit linear Lorentz transformation macroscopic magnetic field magnetic induction magnitude Maxwell equations medium modes molecules multipole multipole expansion multipole moments nonrelativistic normal obtain oscillations parallel parameter photon Phys plane wave plasma point charge polarization problem propagation quantum quantummechanical radius region relativistic resonant rest frame result scalar scalar potential scattering shown in Fig solution spectrum sphere spherical surface tensor theorem transverse unit vanishes vector potential velocity wave guide wave number wavelength written zero