Answer:
it is to be placed at x = 3.1 cm
Explanation:
Electric field due to charge placed at x = -30 cm
so we have
[tex]E_1 = \frac{kq}{x^2}[/tex]
[tex]E_1 = \frac{9 \times 10^9(4\times 10^{-12})}{0.30^2}[/tex]
[tex]E_1 = 0.4 N/C[/tex] towards left
now electric field due to another charge placed at x = 4 cm
[tex]E_2 = \frac{9 \times 10^9(10\times 10^{-12})}{0.04^2}[/tex]
[tex]E_2 = 56.25 N/C[/tex] towards Right
now we need electric field due to 6 pC must be equal to
[tex]E = 56.25 - 0.4[/tex]
[tex]E = 55.85 N/C[/tex] towards Left
so we have
[tex]55.85 = \frac{9 \times 10^9(6 \times 10^{-12})}{r^2}[/tex]
[tex]r = 0.031 m[/tex]
so it is to be placed at x = 3.1 cm
