## Classical ElectrodynamicsProblems after each chapter |

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Page 140

... magnetic properties different from free space with charges and currents . A

general method of attack is to exploit the second equation in ( 5.26 ) . If V. B = 0

everywhere , B must be the curl of some vector field A ( x ) ,

potential ...

... magnetic properties different from free space with charges and currents . A

general method of attack is to exploit the second equation in ( 5.26 ) . If V. B = 0

everywhere , B must be the curl of some vector field A ( x ) ,

**called**the vectorpotential ...

Page 181

6.5 Gauge Transformations ; Lorentz Gauge ; Coulomb Gauge The

transformation ( 6.34 ) and ( 6.35 ) is

invariance of the fields under such transformations is

The relation ( 6.36 ) ...

6.5 Gauge Transformations ; Lorentz Gauge ; Coulomb Gauge The

transformation ( 6.34 ) and ( 6.35 ) is

**called**a gauge transformation , and theinvariance of the fields under such transformations is

**called**gauge invariance .The relation ( 6.36 ) ...

Page 370

The unshaded interior of the cone represents the past and the future , while the

shaded region outside the cone is

the light cone is said to have a time - like ( spacelike ) separation from the origin .

The unshaded interior of the cone represents the past and the future , while the

shaded region outside the cone is

**called**“ elsewhere . ” A point inside ( outside )the light cone is said to have a time - like ( spacelike ) separation from the origin .

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### Contents

Introduction to Electrostatics | 1 |

BoundaryValue Problems in Electrostatics I | 26 |

Wave Guides and Resonant Cavities | 235 |

Copyright | |

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acceleration angle angular applied approximation assumed atomic average axis becomes boundary conditions calculate called Chapter charge charged particle classical coefficients 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 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 shows side solution space sphere spherical surface transformation unit vanishes vector velocity volume wave written