If the electric field inside a capacitor exceeds the dielectric strength of the

Question

If the electric field inside a capacitor exceeds the dielectric strength of the dielectric between its plates, the dielectric will break down, discharging and ruining the capacitor. Thus, the dielectric strength is the maximum magnitude that the electric field can have without breakdown occurring. The dielectric strength of air is 3.0 times 106V/m, and that of neoprene rubber is 1.2 times 107 V/m. A certain air-gap, parallel plate capacitor can store no more than 0.041 J of electrical energy before breaking down. How much energy can this capacitor store without breaking down after the gap between its plates is filled with neoprene rubber?

Explanation / Answer

Energy stored in a capacitor is 0.5 * C * V^2.
Charge in a capacitor is C * V

Capacitance is eo * er * A / d

We can see that the difference in capacitance will be 6.7/1.00054 times the air capacitor.
The voltage difference will be 1.2E7 / 3E6.

Using the energy formula, we see that energy is proportional to capacitance and V^2.
So multiply the air cap's energy by the voltage difference squared times the capacitance difference.

You should end up with E = 0.041J * (1.2E7/3E6)^2 * (6.7/1.0054)

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