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ECE 3318 Applied Electricity and Magnetism Spring 2017 Prof. David R. Jackson ECE Dept. Notes 12 1 Conductors J E Ohm’s law Material [S/m] Silver 6.3107 Copper 6.0107 Copper (annealed) 5.8107 Gold 4.1107 Aluminum 3.5107 Zinc 1.7107 Electric conductors: >> 1 Brass 1.6107 Perfect electric conductor (PEC): Nickel 1.4107 Iron 1.0107 Tin 9.2106 Steel (carbon) 7.0106 Steel (stainless) 1.5106 Note: Many of the properties derived for PECs hold very accurately for good conductors. http://en.wikipedia.org/wiki/Electrical_resistivity_and_conductivity 2 Perfect Electric Conductors Inside a perfect conductor, the electric field must be zero. Ohm’s law: J E or E J / PEC PEC: E0 3 Perfect Electric Conductors (cont.) Inside and on a perfect conductor, the potential must be constant. E 0 A B C x, y, z PEC Hence B VAB E dr 0 A constant 4 Perfect Electric Conductors (cont.) Electric lines of flux must enter or leave a conductor perpendicular to it. In other words: Et = tangential electric field = 0 On surface of PEC: B VAB E dr E r 0 A Hence, E is perpendicular to r for any r along the surface. A B r We choose a small path r in a tangential direction along the surface. PEC 5 Perfect Electric Conductors (cont.) Inside a PEC v = 0 Proof: Assume a point inside where v > 0 v > 0 inside small volume (since v is a continuous function). Qencl 0 S + + ++ + + + PEC D nˆ dS Q encl S Hence 0 Qencl 0 Contradiction ! 6 Perfect Electric Conductors (cont.) Only s on the surface is allowed for a PEC. PEC PEC PEC http://en.wikipedia.org/wiki/Electrostatics 7 Faraday Cage Effect Inside of a hollow PEC shell in statics: There is no electric field. There is no s on the inner surface. PEC s + - q - Static electric field source - + E=0 Note: The Faraday cage does not have to be grounded. + + + This is a shielded region (no electric field). 8 Faraday Cage Effect (cont.) Proof of Faraday cage effect Hollow cavity + + + + PEC + The electric field is zero inside the conductor. + + The potential on the boundary of the inner hollow cavity is constant. + The uniqueness theorem then says that the potential must be a constant throughout the hollow cavity region. + + + + PEC shell + The electric field is then zero inside the hollow cavity as it comes from the gradient of the electric field. Note: The uniqueness theorem is discussed later. 9 Faraday Cage: Practical Conductor In static equilibrium, the Faraday cage still works, even with a practical good conductor (finite conductivity): From Ohm's law : J 0 inside metal E 0 Static electric field source - q - - E=0 - E 0 inside metal Conducting metal shell (finite conductivity) The rest of the proof works the same way. 10 Faraday Cage: Note on Magnetic Field A Faraday cage made of a good conductor does not block a static magnetic field! H 0 N S A high permeability material will act as a good shield for a static magnetic field (e.g., Mu-metal, r = 100,000). 11 High-Frequency Shielding At high frequencies, both electric and magnetic fields are blocked by the skin effect. E0 H 0 Radiating antenna source Skin depth: Thickness >> = 2 To be a good shield, the thickness of the shield should be large compared to a skin depth. This situation is discussed in ECE 3317 (skin-depth effect). 12 Faraday Cage Effect (cont.) Faraday-cage effect They are safe from the Tesla coil! 13 Faraday Cage Effect (cont.) Faraday-cage effect She is safe from the Van de Graaff generator! (Boston Science Museum) 14 Faraday Cage Effect (cont.) Faraday Cage Shielded Room The modular Faraday cage is designed to meet or even exceed the vast majority of shielding requirements. The system is constructed of shielded modular panels, available in either standard-sized or custom-designed panels to meet exact specifications in government, industry, research and development, university or hospital use. http://www.directindustry.com/prod/holland-shielding-systems-bv/faraday-cages-modular-35048-1031291.html 15 Faraday Cage Effect (cont.) +++ +++ ___ +++ +++ ___ ___ +++ ___ +++ ___ ___ 1) Occupants are pretty safe (but let the charge dissipate before you get out!) 2) Occupants are not very safe Earth Earth 16 Shielding and Grounding a b Spherical PEC shell Neutral (no charge) PEC Drill hole and insert point charge, then solder hole. q PEC a Find E: b q Neutral shell (no charge) PEC 17 Shielding and Grounding (cont.) (a) r<a D nˆ dS Q encl S Dr 4 r 2 q q E rˆ 2 4 0 r (b) a<r<b E0 (PEC) a b q PEC Neutral shell (c) r>b Dr 4 r 2 q q E rˆ 2 4 r 0 18 Shielding and Grounding (cont.) Neutral shell q PEC q E rˆ (outside metal) 2 4 r 0 The neutral metal shell does not block the static electric field coming from the inside ! (The shell would be a good shield for high-frequency fields coming from the inside, however.) 19 Shielding and Grounding (cont.) Find QA, QB: QA q QB PEC Neutral shell QA - - q- - - + + + + + + + + + PEC + + + - + + + Neutral shell: QA QB QB + 20 Shielding and Grounding (cont.) + PEC + + QA - + - - q - - - S + + + Dr 4 r 2 Qencl + - QB + + + encl + + + D nˆ dS Q + The electric field is zero inside of a PEC. + so S A Gaussian surface is chosen inside the metal shell. Qencl 0 or QA q 0 Hence QA q We then also have QB q (neutral shell) 21 Shielding and Grounding (cont.) + + + + + + q + PEC - - q - - - q + + + + + + + + + Flux picture showing the charge on the surfaces Note: Flux lines go from positive charges to negative charges. (Also, they go from higher potential to lower potential.) 22 Shielding and Grounding (cont.) Next, “ground” the shell: r b: E 0 PEC - q --q - - Proof: E=0 We can use the uniqueness theorem, considering the outside of the shell, the earth, and the wire to form the boundary of our region. PEC wire Earth The earth is modeled as a big conductor. 23 Shielding and Grounding (cont.) Charge on outer surface: r b: E 0 QBG D nˆ dS Q PEC encl 0 - qq S Qencl 0 q q QBG S PEC wire Hence QBG 0 Earth 24 Shielding and Grounding (cont.) PEC Charge on outer surface (cont.): - - -q - q - - - + + + + + + q + PEC - - q - - - q + + + PEC wire - E0 + + q + + + + + QBG 0 + + + Neutral shell before grounding Earth After grounding The charge q on the outer surface has flowed down to ground. 25 Summary of Shielding Effects in Statics PEC q - - + Effect # 1: Faraday cage effect - + E0 - There is no field on the inside (does not require grounding). + + + Effect # 2: Static field penetration + + + + + q + - - q+ q - - + An ungrounded shield does not block the static electric field of an inside source. PEC + + + + + E0 + + + 26 Summary of Shielding Effects in Statics (cont.) PEC - - - q - - - - E0 Effect # 3: Grounding Conducting wire A grounded shield removes the electric field in the exterior region and removes charge from the outer surface. (This assumes that there are no charges in the outside region.) Earth 27