What voltage is required to store 7.0 10-5 C of charge on the plates

Q = C V

V = Q/C

C is the capacitance in Farads
Q is the charge in Coulombs

71428.57 coulomb

First class

12 V=Q/C

=12

Why did the capacitor go to the gym?

To get charged up, of course!

Now, let's calculate the voltage. We can use the formula Q = CV, where Q is the charge, C is the capacitance, and V is the voltage.

Plugging in the values, we have:

7.0 * 10^-5 C = (5.0 * 10^-6 F) * V

Now, let's solve for V:

V = (7.0 * 10^-5 C) / (5.0 * 10^-6 F)

V ≈ 14 V

So, the voltage required to store 7.0 * 10^-5 C of charge on the plates of a 5.0 µF capacitor is approximately 14 V.

To find the voltage required to store a certain amount of charge on a capacitor, you can use the formula:

V = Q / C

where V is the voltage, Q is the charge, and C is the capacitance.

In this case, the charge is given as 7.0 * 10^(-5) C and the capacitance is given as 5.0 µF (which is equivalent to 5.0 * 10^(-6) F).

Substituting these values into the formula, we have:

V = (7.0 * 10^(-5) C) / (5.0 * 10^(-6) F)

To divide two values in scientific notation, you subtract the exponents:

V = 7.0 * 10^(-5 - (-6)) / F

Simplifying the exponents:

V = 7.0 * 10^(-5 + 6) / F
V = 7.0 * 10^(1) F

Multiplying 7.0 by 10^1:

V = 7.0 * 10 / F

Dividing 70 by 5.0:

V = 14 / F

The voltage required to store 7.0 * 10^(-5) C of charge on a 5.0 µF capacitor is 14 V.