Two point charges placed at a distance r in air exert a force F on each other. The distance at which they experience force 4F when placed in a medium of dielectric constant K=16 is -

Question

Two point charges placed at a distance r in air exert a force F on each other. The distance at which they experience force 4F when placed in a medium of dielectric constant K=16 is - (A) r (B) (r/8) (C) (r/4) (D) (r/2)

Tardigrade Admin · Accepted Answer

Force in air at a distance r, F= (q1 q2/4 π Ïµ0 r2) ......(i) Let râ be the distance in the medium, therefore 4 F=(q1 q2/4 π ϵ0(16)(r prime)2) ldots ldots (ii) From (i) ÷ (ii) (1/4)=(16(r prime)2/r2) ∴ r prime=(r/8)

Q. Two point charges placed at a distance $r$ in air exert a force $F$ on each other. The distance at which they experience force $4 F$ when placed in a medium of dielectric constant $K = 16$ is -

$r$

$\frac{r}{8}$

$\frac{r}{4}$

$\frac{r}{2}$

Q. Two point charges placed at a distance r in air exert a force F on each other. The distance at which they experience force 4F when placed in a medium of dielectric constant K=16 is -

r

8r​

4r​

2r​

Force in air at a distance r, F=4πϵ0​r2q1​q2​​ ......(i) Let r’ be the distance in the medium, therefore 4F=4πϵ0​(16)(r′)2q1​q2​​…… (ii) From (i) ÷ (ii) 41​=r216(r′)2​ ∴r′=8r​

Q. Two point charges placed at a distance $r$ in air exert a force $F$ on each other. The distance at which they experience force $4 F$ when placed in a medium of dielectric constant $K = 16$ is -

$r$

$\frac{r}{8}$

$\frac{r}{4}$

$\frac{r}{2}$