Course of theoretical physics: Electrodynemics of continuous media |
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Page 2
(1.4) i.e. it is a potential field with a potential ¢ such that E = — grad db, (1.5) and
42 satisfies Laplace's equation Ad> = O. (1.6) The boundary conditions on the
field E at the surface of a conductor follow from the equation curl E = O, which.
like ...
(1.4) i.e. it is a potential field with a potential ¢ such that E = — grad db, (1.5) and
42 satisfies Laplace's equation Ad> = O. (1.6) The boundary conditions on the
field E at the surface of a conductor follow from the equation curl E = O, which.
like ...
Page 33
Find the relation between frequency and wavelength for waves propagated on a
charged plane surface of a liquid conductor (in a gravitational field). Obtain the
condition for this surface to be stable (Ya. I. Frenkel', 1935). SOLUTION. Let the ...
Find the relation between frequency and wavelength for waves propagated on a
charged plane surface of a liquid conductor (in a gravitational field). Obtain the
condition for this surface to be stable (Ya. I. Frenkel', 1935). SOLUTION. Let the ...
Page 181
Since B = 0 in a superconductor, the normal component of the external field must
be zero on the surface, i.e. the field outside a superconductor must be
everywhere tangential to its surface, the lines of magnetic force having the
surface as their ...
Since B = 0 in a superconductor, the normal component of the external field must
be zero on the surface, i.e. the field outside a superconductor must be
everywhere tangential to its surface, the lines of magnetic force having the
surface as their ...
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angle anisotropy anisotropy energy antiferromagnetic atoms axes axis body boundary conditions calculation charge circuit coefficient coefficients components conductor constant coordinates corresponding cross-section crystal Curie point curl H defined definition denote dependence derivatives determined dielectric diffraction direction discontinuity dissipation domains electric field electromagnetic field electrons ellipsoid energy flux expression external field external magnetic field ferroelectric ferromagnet field H find finite first first term flow fluctuations fluid formula free energy frequency function given gives grad Hence incident induction infinite integral isotropic Landau theory layer linear magnetic field magnetohydrodynamics magnetostriction magnitude medium normal obtain optical particle permittivity perpendicular perturbation phase plane polarization PROBLEM propagated properties pyroelectric quantities reflection refraction relation respect result rotation satisfied scattering shock wave significance solution sphere superconducting surface symmetry tangential temperature tensor theory thermodynamic potential transition uniaxial upper half-plane values variable velocity volume wave vector z-axis zero