Answer:
y coordinate where field is zero is 1.1 m
Explanation:
given data
charge q1 = -10.00 µC
y = 6.40 m,
charge q2 = -7.70 µC
y = -3.60 m
solution
we know that here Electric field E that is express as
Electric field E = [tex]\frac{kQ}{r^2}[/tex] ..............................1
and
Distance between charges will be
Distance between charges = 6.40 - (-3.60) = 10 m
so here neutral point P is at distance d from q1
so it is distance (10 - d) from q2.
so here
Field from q1 at P = [tex]\frac{k(-10 \times 10^{-6})}{d^2}[/tex]
and
Field from q2 at P = [tex]\frac{k(-7.70 \times 10^{-6})}{(10-d)^2}[/tex]
so here field is in opposite directions and the resultant field = 0
so
[tex]\frac{k(-10 \times 10^{-6})}{d^2} = \frac{k(-7.70 \times 10^{-6})}{(10-d)^2}[/tex]
[tex]\frac{10}{d^2} = \frac{7.70}{(10-d)^2}[/tex]
d = 5.326242 m
so y coordinate where field is zero is 6.40 - 5.32 = 1.1 m
