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An electron falls from rest through a vertical distance h in a uniform and vertically upward directed electric field E. The direction of electric field is now reversed, keeping its magnitude the same. A proton is allowed to fall from rest in it through the same vertical distance h. The time of fall of the electron, in comparison to the time of fall of the proton is

Smaller
5 times greater
Equal
10 times greater

122.

A certain charge Q is divided into two parts q and Q-q. How the charge Q and q must be related so that when q and (Q-q) is placed at a certain distance apart experience maximum electrostatic repulsion?

Q = 2q
q = 3q
Q = 4q
Q= 4q + c

123.

A charged particle 'q' is shot with speed v towards another fixed charged particle Q. It approaches Q upto the closest distance r and then returns. If q were given a speed 2v, the closest distance of approach would be

124.

A conducting sphere of radius R = 20 cm is given by a charge Q = 16μC. What is E at centre?

3.6×10⁶ N/C
1.8×10⁶N/C
Zero
0.9×10⁶ N/C

125.
If an insulated non-conducting sphere of radius R has charge density ρ. The electric field at a distance r from the centre of sphere (r > R) will be

$\frac{ρ R}{3 ε_{o}}$

$\frac{ρ r}{ε_{o}}$

$\frac{ρ r}{3 ε_{o}}$

$\frac{3 ρ R}{ε_{o}}$

$\frac{ρ r}{3 ε_{o}}$

Gauss law allows us to determine the electric field at a point when there is sufficient symmetry.

Charge which is enclosed in the surface is given by

$σ = \frac{4}{3} π r^{3} ρ Now according ro Gaussian law ε ϕ E ds = σ ε_{o} E 4 π r^{2} = \frac{4}{3} π r^{3} ρ E = \frac{ρ r}{3 ε_{o}}$

126.

Two spherical conductors B and C having equal radii and carrying equal charges in them repel each other with a force F when kept apart at some distance. A third spherical conductor having same radius as that of B but uncharged, is brought in contact with B, then brought in contact with C and finally removed away from both. The new force of repulsion between B and C is

$\frac{F}{4}$
$\frac{3 F}{4}$
$\frac{F}{8}$
$\frac{3 F}{8}$

127.

A charge q is located at the centre of a cube. The electric flux through any face is

$\frac{4 πq}{6 (4 {πε}_{o})}$
$\frac{πq}{6 (4 {πε}_{o})}$
$\frac{q}{6 (4 {πε}_{o})}$
$\frac{2 πq}{6 (4 {πε}_{o})}$

128.

Three equal charges, each having a magnitude of 2.0 x 10^-6 C, are placed at the three corners of a right angled triangle of sides 3 cm, 4 cm and 5 cm. The force (in magnitude) on the charge at the right angled corner is

50 N
26 N
29 N
45.9 N

129.

Two charges of + 10 μC and +20 μC are separated by a distance 2 cm. The net potential (electric) due to the pair at the middle point of the line joining the two changes, is

27 MV
18 MV
20 MV
23 MV

130.

The charges on two spheres are + 7 µC and -5C respectively. They experience a force F. If each of them is given an additional charge of -2 µC, then the new force of attraction will