1 Answer

Gerardo Abdo · Answer 1 · 2023-03-20T14:58:48+0000

The distance between the charges is given as,

$d=5\text{ m}$

The value of the charges are given as,

$\begin{gathered} q_1=0.001\text{ C} \\ q_2=0.002\text{ C} \end{gathered}$

According to the Coulomb's Law, the force of repulsion between these charges is,

where k is the electrostatic constant.

The value of k is,

Substituting the known values,

$\begin{gathered} F=9*10^9*(0.001*0.002)/(5^2) \\ F=7.2*10^2\text{ N} \\ F=720\text{ N} \end{gathered}$

Thus, the repulsive force acting between the charges is 720 N.

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