## Classical Electrodynamics |

### From inside the book

Results 1-3 of 80

Page xii

3.8

spherical Green's function

cylindrical coordinates, 84. 3.1 1 Eigenfunction expansions for Green's functions,

87.

3.8

**Expansion**of Green's functions in spherical coordinates, 77. 3.9 Use ofspherical Green's function

**expansion**, 81. 3.10**Expansion**of Green's functions incylindrical coordinates, 84. 3.1 1 Eigenfunction expansions for Green's functions,

87.

Page 631

for concentric spheres, 80 for cylindrical box, 97 for rectangular box, 89 for

rectangular box, eigenfunction

reciprocation theorem, 25 Green's theorem, 15 use of, in diffraction, 280 use of,

with wave ...

for concentric spheres, 80 for cylindrical box, 97 for rectangular box, 89 for

rectangular box, eigenfunction

**expansion**of, 88 for sphere, 41 Green'sreciprocation theorem, 25 Green's theorem, 15 use of, in diffraction, 280 use of,

with wave ...

Page 635

... 49 of dipole layer, 11 of line charge,

charge,

eigen- functions, 88 of point charge,

...

... 49 of dipole layer, 11 of line charge,

**expansion**in polar coordinates, 86 of pointcharge,

**expansion**in cylindrical coordinates, 86 of point charge,**expansion**ineigen- functions, 88 of point charge,

**expansion**in spherical coordinates, 62, 69 of...

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### Contents

Introduction to Electrostatics | 1 |

Scalar potential | 7 |

Greens theorem | 14 |

Copyright | |

19 other sections not shown

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### Common terms and phrases

acceleration angle angular applied approximation assumed atomic average axis becomes boundary conditions calculate called Chapter charge charged particle classical collisions compared component conducting Consequently consider constant coordinates cross section cylinder defined density dependence derivative determine dielectric dimensions dipole direction discussed distance distribution effects electric field electromagnetic electron electrostatic energy equal equation example expansion expression factor force frame frequency function given gives incident inside integral involved light limit Lorentz loss magnetic magnetic field magnetic induction magnitude mass means modes momentum motion moving multipole normal observation obtain origin parallel particle physical plane plasma polarization position potential problem properties radiation radius region relation relative relativistic result satisfy scalar scattering shown in Fig shows side solution space sphere spherical surface transformation unit vanishes vector velocity volume wave written