Answer:
(a) The electrostatic force on the 3.78-nC particle is [tex]10.35 \times 10^{-6} N[/tex] along the
positive x axis.
(b) The electrostatic force on the 1.95-nC particle is [tex]10.35 \times 10^{-6} N[/tex] along the
negative x axis.
Explanation:
a.) The electrostatic force on the 3.78 nC particle is
[tex]F_1 = \frac{Q_1 \times Q_2}{4 \pi \epsilon_0 r^2} \hat{i}[/tex] where [tex]Q_1[/tex] is the 1.95 nC charge at the origin, and
[tex]Q_2[/tex] is the 3.78 nC charge at 0.08 m from the origin
r is the distance of 0.08 between the charges
[tex]\epsilon_{0}[/tex] is the relative permittivity of 8.854 × [tex]10^{-12} F/m[/tex].
Therefore [tex]F_1 = \frac{1.95 \times 10^{-9} \times 3.78 \times 10^{-9}}{4 \times \pi \times 8.854 \time 10^{-12} \times (0.08)^2} = 10.35 \times 10^{-6} Newton[/tex] in the positive x direction.
b.) The electrostatic force on the 1.95 nC particle is the same as the electrostatic force on the 3.78 nC particle except that its direction is in the negative x- axis direction.
