Question

A charge of 7.0 μC is to be split into two parts that are then separated by 9.0 mm. What is the maximum possible magnitude of the electrostatic force between those two parts?

Answer 1

`F = 1361.1 N`

Step-by-step explanation:

As we know that a charge is split into two parts

so we have

`q_1 + q_2 = 7\mu C`

now we have

`F = (kq_1q_2)/(r^2)`

here we know

`F = (kq_1(7\mu C - q_1))/(r^2)`

here we have

r = 9 mm

now to obtain the maximum value of the force between two charges

`(dF)/(dq_1) = 0`

so we have

`7 \mu C - q_1 - q_1 = 0`

so we have

`q_1 = q_2 = 3.5 \mu C`

so the maximum force is given as

`F = ((9* 10^9)(3.5 \mu C)(3.5 \mu C))/(0.009^2)`

`F = 1361.1 N`