here we have to calculate the net positive charge present on he surface of the conducting sphere.
as the sphere is a conducting one the,the charge will be stored on its surface.
though the charge is present at the surface,still it will behave just like the total charge is concentrated at the centre of the sphere.
the electric field at outside of the sphere is E=[tex]\frac{1}{4\pi\epsilon} \frac{q}{r^2}[/tex]
as E= [tex]\frac{-dv}{dr}[/tex]
so V=[tex]\frac{1}{4\pi\epsilon} \frac{q}{r}[/tex]
here V=27 volt,radius of sphere is 0.800 m and the point at which the potential is considered is at 1.20 m from th centre of the sphere.hence the point is at the outside of the sphere .
hence we have 27=[tex]\frac{1}{4\pi\epsilon} \frac{q}{1.20}[/tex]
q=27×[tex]\frac{1}{9*10^{9} }* 1.20[/tex] coulomb
=3.6×[tex]10^{-9}[/tex] coulomb [ans]
