Two
insulated charged copper spheres A and B have their centers separated by a
distance of 50 cm. What is the mutual force of electrostatic repulsion if the
charge on each is 6.5 × 10−7 C? The radii of A and B are negligible compared to
the distance of separation.
What
is the force of repulsion if each sphere is charged double the above amount,
and the distance between them is halved?
Answer:
Method -1
(a)
Charge on sphere A, qA = Charge on sphere B, qB = 6.5 × 10−7 C Distance between the
spheres, r = 50 cm = 0.5 m
Force
of repulsion between the two spheres,
Where,
∈0 = Free space permittivity
=
9 × 109 N m2 C−2
∴= 1.52 × 10−2 N
Therefore,
the force between the two spheres is 1.52 × 10−2 N.
(b)
After doubling the charge, charge on sphere A, qA = Charge on sphere B,
qB = 2 × 6.5 × 10−7 C = 1.3 × 10−6 C
The
distance between the spheres is halved.
∴Force of repulsion between the two spheres,
Method - 2
=
16 × 1.52 × 10−2
= 0.243 N
Therefore,
the force between the two spheres is 0.243 N.
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