## Classical electrodynamics |

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Page 281

The surface 5, with certain apertures in it, gives rise to reflected and transmitted

fields in

absence of the surface. of the system. If the incident wave is described by the

fields ...

The surface 5, with certain apertures in it, gives rise to reflected and transmitted

fields in

**regions**I and 11 in addition to the fields which would be present in theabsence of the surface. of the system. If the incident wave is described by the

fields ...

Page 282

which originate from the diffracting

neighborhood of Sz. This means that the fields, and therefore y(x), will satisfy the

radiation condition, (9.64) With this condition on y> it can readily be seen that the

...

which originate from the diffracting

**region**, they will be outgoing waves in theneighborhood of Sz. This means that the fields, and therefore y(x), will satisfy the

radiation condition, (9.64) With this condition on y> it can readily be seen that the

...

Page 286

The unit vectors n and n' = — n are directed into

Our aim is to obtain an integral form for the fields in

specified on the right-hand surface Sv This is analogous to the geometrical ...

The unit vectors n and n' = — n are directed into

**regions**II and II', respectively.Our aim is to obtain an integral form for the fields in

**region**II in terms of the fieldsspecified on the right-hand surface Sv This is analogous to the geometrical ...

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### Contents

Introduction to Electrostatics | 1 |

Scalar potential | 7 |

Greens theorem | 14 |

Copyright | |

17 other sections not shown

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### Common terms and phrases

4-vector acceleration angular distribution approximation assumed atomic average axis behavior Bessel functions boundary conditions bremsstrahlung calculate Chapter charge density charge q charged particle classical coefficients collisions component conductor Consequently consider coordinates cross section current density cylinder defined delta function dielectric constant diffraction dimensions dipole direction discussed effects electric field electromagnetic fields electron electrostatic emitted energy loss expansion expression factor force equation frequency given Green's function impact parameter incident particle inside integral Laplace's equation limit linear Lorentz invariant Lorentz transformation macroscopic magnetic field magnetic induction magnitude Maxwell's equations meson molecules momentum multipole multipole expansion nonrelativistic obtain orbit oscillations parallel perpendicular photon plane wave plasma point charge polarization power radiated problem quantum quantum-mechanical radiative radius region relativistic result scalar scattering shown in Fig shows solid angle solution spectrum spherical surface theorem transverse vanishes vector potential wave equation wave number wavelength written zero