## Classical Electrodynamics |

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Page 129

4.3 4.4 4.5 (c) Nuclear-charge distributions can be approximated by a

charge density throughout a spheroidal volume of semimajor axis a and

semiminor axis b. Calculate the quadrupole moment of such a nucleus, assuming

that the ...

4.3 4.4 4.5 (c) Nuclear-charge distributions can be approximated by a

**constant**charge density throughout a spheroidal volume of semimajor axis a and

semiminor axis b. Calculate the quadrupole moment of such a nucleus, assuming

that the ...

Page 130

4.6 Two concentric conducting spheres of inner and outer radii a and b,

respectively, carry charges +Q. The empty space between the spheres is half-

filled by a hemispherical shell of dielectric (of dielectric

the figure.

4.6 Two concentric conducting spheres of inner and outer radii a and b,

respectively, carry charges +Q. The empty space between the spheres is half-

filled by a hemispherical shell of dielectric (of dielectric

**constant**e), as shown inthe figure.

Page

(e) What relevance have the results of (c) and (d) to the radiation properties of a

steady current in a loop? As an idealization of steady-state currents flowing in a

circuit, consider a system of N identical charges q moving with

(e) What relevance have the results of (c) and (d) to the radiation properties of a

steady current in a loop? As an idealization of steady-state currents flowing in a

circuit, consider a system of N identical charges q moving with

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### Contents

Introduction to Electrostatics | 1 |

Nš 3 | 3 |

Greens theorem | 14 |

Copyright | |

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angle angular applied approximation assumed atomic average axis becomes boundary conditions calculate called Chapter charge classical collisions compared component conducting conductor Consequently consider constant coordinates cross section cylinder defined density depends 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 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 result satisfy scalar scattering shows side simple solution space sphere spherical surface transformation unit vanishes vector velocity volume wave written