Classical Electrodynamics |
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Page 129
Given that Eu" (Z = 63) has a quadrupole moment Q = 2.5 × 10−9 cm” and a
mean radius R = (a + b)/2 = 7 x 10-13 cm, determine the fractional difference in
radius (a — b)/R. 4.3 A localized distribution of charge has a charge density p(r) =
...
Given that Eu" (Z = 63) has a quadrupole moment Q = 2.5 × 10−9 cm” and a
mean radius R = (a + b)/2 = 7 x 10-13 cm, determine the fractional difference in
radius (a — b)/R. 4.3 A localized distribution of charge has a charge density p(r) =
...
Page 166
c c \ a A cylindrical conductor of radius a has a hole of radius b bored parallel to,
and centered a distance d from, the cylinder axis (d + b : a). The current density is
uniform throughout the remaining metal of the cylinder and is parallel to the axis ...
c c \ a A cylindrical conductor of radius a has a hole of radius b bored parallel to,
and centered a distance d from, the cylinder axis (d + b : a). The current density is
uniform throughout the remaining metal of the cylinder and is parallel to the axis ...
Page 576
A spherical hole of radius a in a conducting medium can serve as an
electromagnetic resonant cavity. (a) Assuming infinite conductivity, determine the
transcendental equations for the characteristic frequencies on of the cavity for TE
and TM ...
A spherical hole of radius a in a conducting medium can serve as an
electromagnetic resonant cavity. (a) Assuming infinite conductivity, determine the
transcendental equations for the characteristic frequencies on of the cavity for TE
and TM ...
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Contents
Introduction to Electrostatics | 1 |
BoundaryValue Problems in Electrostatics I | 26 |
Multipoles Electrostatics of Macroscopic Media | 98 |
Copyright | |
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