1. Two parallel conducting plates with an area of A, are separated by the distance d, as shown in the sketch. Assume that the conductivity between the two plates is given by (1 – ž5)' with the lower plate located at z = 0. A (a) Neglecting any fringing effects, determine the current density, J the electric field, E, and the electric flux density D between the two plates, assuming a current I flows between the two plates. (Assume a permittivty of eo throughout.) (b) Using your results in (a), determine the potential & between the two plates. (c) Determine the charge density pv = V · D. (d) What is the resistance R measured across the two plates?

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1. Two parallel conducting plates with an area of A, are separated by the distance d, as shown
in the sketch. Assume that the conductivity between the two plates is given by
o =
(1 – }3)'
with the lower plate located at z = 0.
A
(a) Neglecting any fringing effects, determine the current density, J the electric field, E, and
the electric flux density D between the two plates, assuming a current I flows between
the two plates. (Assume a permittivty of €o throughout.)
(b) Using your results in (a), determine the potential between the two plates.
(c) Determine the charge density py = V · D.
(d) What is the resistance R measured across the two plates?
Transcribed Image Text:1. Two parallel conducting plates with an area of A, are separated by the distance d, as shown in the sketch. Assume that the conductivity between the two plates is given by o = (1 – }3)' with the lower plate located at z = 0. A (a) Neglecting any fringing effects, determine the current density, J the electric field, E, and the electric flux density D between the two plates, assuming a current I flows between the two plates. (Assume a permittivty of €o throughout.) (b) Using your results in (a), determine the potential between the two plates. (c) Determine the charge density py = V · D. (d) What is the resistance R measured across the two plates?
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