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Methods of solving problems in electrostatics
A conducting ellipsoid
The forces on a conductor
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According angle assume averaging axes axis becomes body boundary condition calculated called charge circuit co-ordinates coefficient compared complex components condition conducting conductor consider constant continuous corresponding crystal curl denote density depends derivative determined dielectric difference direction discontinuity distance distribution effect electric field electrons ellipsoid energy equal equation expression external factor fluid flux follows force formula frequency function given gives grad Hence incident independent induction integral layer light linear magnetic field mean medium metal neglect normal obtain occurs particle particular perpendicular phase Physics plane polarisation positive potential present PROBLEM propagation properties quantities reflection regarded region relation respect result rotation satisfies scattering side simply solution sphere Substituting surface symmetry taken temperature tensor theory thermodynamic tion uniform unit values variable vector volume wave wire write zero