## Electrodynamics of Continuous MediaCovers the theory of electromagnetic fields in matter, and the theory of macroscopic electric and magnetic properties of matter. There is a considerable amount of new material particularly on the theory of the magnetic properties of matter and the theory of optical phenomena with new chapters on spatial dispersion and non-linear optics. |

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Page 355

and the induction is then D = e(co) E + ij (co) E x H, where e(<o) is given by (78.1)

and / (co) = —4nNe3/cm2coi = (\e |/2mc) dt/dco (H. Becquerel. 1897). §102.

Mechanical-

effects, ...

and the induction is then D = e(co) E + ij (co) E x H, where e(<o) is given by (78.1)

and / (co) = —4nNe3/cm2coi = (\e |/2mc) dt/dco (H. Becquerel. 1897). §102.

Mechanical-

**optical**effects Besides the electric-**optical**and magnetic-**optical**effects, ...

Page 366

This means that in these crystals there is no natural-activity effect in the direction

of the

of the planes of symmetry. For vectors n lying in the xz or yz plane the scalar ...

This means that in these crystals there is no natural-activity effect in the direction

of the

**optical**axis. In a biaxial crystal of the class C2, the**optical**axes are in oneof the planes of symmetry. For vectors n lying in the xz or yz plane the scalar ...

Page 458

333, 399 Mechanical-

Micromagnetism 157n. Momentum density 260 Mutual inductance 119,210

Natural

Nematic crystal ...

333, 399 Mechanical-

**optical**effects 355-7 Meridional distribution 234Micromagnetism 157n. Momentum density 260 Mutual inductance 119,210

Natural

**optical**activity 362-6 of crystals 364-5 Navier-Stokes equation 225, 228Nematic crystal ...

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### Contents

ELECTROSTATICS OF CONDUCTORS 51 The electrostatic field of conductors | 1 |

2 The energy of the electrostatic field of conductors | 3 |

3 Methods of solving problems in electrostatics | 9 |

Copyright | |

122 other sections not shown

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### Common terms and phrases

absorption amplitude angle anisotropy antiferromagnetic atoms averaging axes axis body boundary conditions calculation charge Cherenkov radiation coefficient components conductor constant coordinates corresponding cos2 cross-section crystal Curie point curl H denote density dependence derived determined dielectric diffraction direction discontinuity dissipation distance e(co effect electric field electron ellipsoid equation expression external field factor ferroelectric ferromagnet fluctuations fluid formula Fourier free energy frequency function given gives grad Hence incident wave induction integral intensity isotropic Laplace's equation linear macroscopic magnetic field magnitude Maxwell's equations medium monochromatic non-linear normal obtain optical particle permittivity perpendicular perturbation phase plane polarization Problem propagated properties pyroelectric quantities radiation refraction relation respect result rotation satisfied scalar scattering solution spatial dispersion sphere Substituting suffixes superconducting surface symmetry temperature tensor theory thermodynamic potential transition uniaxial upper half-plane values variable velocity wave vector waveguide z-axis zero