A parallel plate capacitor with adjustible plate separation d and adjustible are

Question

A parallel plate capacitor with adjustible plate separation d and adjustible area A is connected to a battery. The capacitor is fully charged to Q Coulombs and a voltage of V Volts. (C is the capacitance and U is the stored energy.) Give all correct answers concerning a parallel-plate capacitor charged by a battery (e.g. B, AC, CDF).

A) After being disconnected from the battery, increasing the area A will decrease V.

B) With the capacitor connected to the battery, increasing the area A will increase U.

C) With the capacitor connected to the battery, decreasing d increases U.

D) With the capacitor connected to the battery, decreasing d decreases Q.

E) With the capacitor connected to the battery, increasing d increases C.

F) After being disconnected from the battery, increasing the area A will increase C.

An explanation with your answer would be amazing. I have looked at a ton of these online and still can't get the correct solution to my specific problem so IDK waht is going wrong. Thanks!!!!

Explanation / Answer

Q=CV=C1V1

V1=CV/C1

C1=?0A/d

a) A increase C1 increase

V1 decrease . right

b) U=(1/2)*C1*V^2

A increase C1 increase

U increase right

c) d decrease C1 increase

U increase right

d) d decrease C1 increase

Q=C1V

Q increases

e) d increase C1 decreases

f) A increase C1 will increase.

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