Answer:
the force will decrease to 3/4 of its original value.
Explanation:
The initial electric force between the two charges is:
[tex]F = k \frac{q\cdot q}{r^2}[/tex]
where
k is the Coulomb's constant
q is the magnitude of each charge
r is their separation
Later, half of one charge is transferred to the other charge; this means that one charge will have a charge of
[tex]q+\frac{q}{2}=\frac{3}{2}q[/tex]
while the other charge will be
[tex]q-\frac{q}{2}=\frac{q}{2}[/tex]
So, the new force will be
[tex]F' = k \frac{(\frac{q}{2})\cdot (\frac{3}{2}q)}{r^2}=\frac{3}{4} (k\frac{q\cdot q}{r^2})=\frac{3}{4}F[/tex]
So, the force will decrease to 3/4 of its original value.
