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Chapter 22 Patterns of Fields in Space • Electric flux • Gauss’s law • Ampere’s law • Maxwell equations Patterns of Fields in Space What is in the box? no charges? vertical charged plate? Patterns of Fields in Space Box versus open surface Seem to be able to tell if there are charges inside …no clue… Gauss’s law: If we know the field distribution on closed surface we can tell what is inside. Gauss’s Law E nˆA surface E nˆdA q inside 0 q inside 0 Symmetry makes it simple! The Electric Field of a Large Plate Symmetry: Field must be perpendicular to surface Eleft=Eright E nˆA q inside 0 surface 2EAbox Q / AAbox 0 Q / A E 2 0 The Electric Field of a Uniform Spherical Shell of Charge Symmetry: 1. Field should be radial 2. The same at every location on spherical surface E nˆA q inside 0 surface A. Outer sphere: Q 2 E 4r 0 B. Inner sphere: 0 2 E 4r 0 1 Q E 40 r 2 E 0 The Electric Field of a Uniform Cube E nˆA surface q inside 0 Is Gauss’s law still valid? Can we find E using Gauss’s law? Gauss’s Law for Electric Dipole Gauss’s Law: Circuits Can we have excess charge inside in steady state? E nˆA surface E nˆA left _ surface E nˆA right_ surface q inside 0 q inside 0 0 Gauss’s Law: Junction Between Two Different Metal Wires n2<n1 u2<u1 i1=i2 n1Au1E1 = n2Au2E2 n1u1 E2 E1 E1 n2u2 E nˆA surface q inside q inside 0 0 (E1 A E2 A) 0 There is negative charge along the interface! Magnet Cut in Half & Pulled Apart No magnetic monopole! Try to cut a magnet down to a single pole, just get smaller magnets No magnetic Charge! Gauss’s Law for Magnetism Dipoles: Electric field: ‘+’ and ‘–’ charges can be separated Magnetic field: no monopoles Suppose magnetic dipole consists of two magnetic monopoles, each producing a magnetic field similar to the electric field. One cannot separate them total magnetic ‘charge’ is zero. E nˆA surface q inside 0 B nˆA 0 surface or B nˆA 0 Gauss’s law for magnetism Patterns of Magnetic Field in Space Is there current passing through these regions? There must be a relationship between the measurements of the magnetic field along a closed path and current flowing through the enclosed area. Ampere’s law Quantifying the Magnetic Field Pattern 0 2 I Bwire 4 r Curly character – introduce: B dl 0 2 I 0 2 I B dl 4 r dl 4 r 2r B dl 0 I Similar to Gauss’s law (Q/0) Ampère’s Law B dl 0 Iinside_ path All the currents in the universe contribute to B but only ones inside the path result in nonzero path integral Ampere’s law is almost equivalent to the Biot-Savart law: but Ampere’s law is relativistically correct Ampere’s Law: A Long Thick Wire B dl 0 Iinside_ path Can B have an out of plane component? Is it always parallel to the path? B dl B2r B2r 0 I for thick wire: 0 2 I B 4 r (the same as for thin wire) Would be hard to derive using Biot-Savart law Ampere’s Law: A Solenoid B dl 0 Iinside_ path Number of wires: (N/L)d What is B dl on sides? B outside is very small B dl Bd Bd 0 I N / L d B 0 IN L Uniform: same B no matter where is the path (solenoid) Maxwell’s Equations Three equations: Gauss’s law for electricity E nˆdA q inside 0 Gauss’s law for magnetism B nˆA 0 Ampere’s law for magnetism B dl 0 I inside_ path Is anything missing? ‘Ampere’s law for electricity’ E dl 0 (incomplete) Maxwell’s Equations (incomplete) E nˆdA q inside 0 Gauss’s law for electricity Gauss’s law for magnetism B nˆA 0 Incomplete version of Faraday’s law E dl 0 Ampere’s law B d l I 0 inside_ path (Incomplete Ampere-Maxwell law) First two: integrals over a surface Second two: integrals along a path Incomplete: no time dependence