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231.
A simple pendulum of length l₁ has a time period of 2 s and another pendulum of length l₂ has a time period of 1 s. Then, the time period of pendulum having length l₁ − l₂ will be

2 s

1.2 s

3 s

$\sqrt{3}$ s

$\sqrt{3}$ s

$As T = 2 π \sqrt{\frac{l}{g}} So, 2 π \sqrt{\frac{l_{1}}{g}} = 2 \Rightarrow l_{1} = \frac{g}{π^{2}} and 2 π \sqrt{\frac{l_{1}}{g}} = 1 \Rightarrow l_{2} = \frac{g}{4 π^{2}} Now, l_{1} - l_{2} = \frac{g}{π^{2}} (1 - \frac{1}{4}) = \frac{3}{4} \frac{g}{π^{2}} Hence, T' = 2 π \sqrt{\frac{l_{1} - l_{2}}{g}} = 2 π \sqrt{\frac{3 g}{4 π^{2} \times g}} = \sqrt{3} s$

232.

Springs of spring constants K, 2K,4K, 8K...are connected in series.A mass m kg is attached to the lower end of the last spring and the system is allowed to vibrate. The time period of oscillations is (Given, m= 40 g and k =2.0 N-cm^-1)

2.12 s
0.126 s
1.26 s
0.0126 s

233.

A pendulum made of a uniform wire of cross-sectional area A has time period T. When an additional mass M is added to its bob, the time period changes to T_m . If the Young's modulus of the material is Y, then $\frac{1}{Y}$ is equal to

$[{(\frac{T_{m}}{T})}^{2} - 1] \frac{A}{Mg}$
$[{(\frac{T_{m}}{T})}^{2} - 1] \frac{Mg}{A}$
$[1 - {(\frac{T_{m}}{T})}^{2}] \frac{A}{Mg}$
$[1 - {(\frac{T}{T_{m}})}^{2}] \frac{A}{Mg}$

234.

Which of the following graphs represents resonance for low damping ?

graph (1)
graph (2)
graph (3)
None of these

235.

A magnet is made to oscillate with a particular frequency, passing through a coil as shown in the figure. The time variation of the magnitude of emf generated across the coil during one cycle is

236.

A particle executes simple harmonic motion between x = − A and x = + A. The time taken for it to go from O to A/ 2 is T₁ and to go from A/2 to A is T₂ . Then

T₁ < T₂
T₁ > T₂
T₁ = T₂
T₁ = 2T₂

237.

A body executes simple harmonic motion. The potential energy (PE), kinetic energy (KE) and total energy (TE) are measured as a function of displacement y. Which of the following statements is true ?

TE is zero when x = 0
PE is maximum when x = 0
KE is maximum when x = O
KE is maximum when x is maximum

238.

The KE and PE of a particle executing SHM of amplitude a will be equal when displacement is

$\frac{a}{2}$
$a \sqrt{2}$
2a
$\frac{a}{\sqrt{2}}$

239.

The time period of the second's hand of a watch is

1 h
1 s
12 h
1 min

240.

A particle starts SHM from the mean position. Its amplitude is a and total energy E. At one instant its kinetic energy is 3 $\frac{E}{4}$ · Its displacement at that instant is