The equation of a simple harmonic oscillator is given as y = Asin20πt + π3, where t is in seconds. The frequency with which kinetic energy oscillates is

1.  5 Hz

2.  10 Hz 

3.  20 Hz

4.  40 Hz

Subtopic:  Energy of SHM |
 64%
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What is the period of oscillation of the block shown in the figure?

1. \(2\pi \sqrt{\dfrac{M}{k}}\) 2. \(2\pi \sqrt{\dfrac{4M}{k}}\)
3. \(\pi \sqrt{\dfrac{M}{k}}\) 4. \(2\pi \sqrt{\dfrac{M}{2k}}\)
Subtopic:  Combination of Springs |
 86%
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If a simple pendulum is brought deep inside a mine from the earth's surface, its time period of oscillation will:

1. increase 
2. decrease 
3. remain same 
4. any of the above depending on the length of the pendulum

Subtopic:  Angular SHM |
 68%
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The amplitude of a simple harmonic oscillator is A and speed at the mean position is v0. The speed of the oscillator at the position x = A3 is:

1.  2v03

2.  2v03

3.  23v0

4.  2v03

Subtopic:  Simple Harmonic Motion | Damped Oscillations (OLD NCERT) |
 76%
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The initial phase of the particle executing SHM with y = 4 sin ωt + 3 cos ωt is 

1.  53°

2.  37° 

3.  90°

4.  45°

Subtopic:  Simple Harmonic Motion |
 52%
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A spring-block system is brought from the Earth's surface to deep inside the mine. Its period of oscillation will:

1. increase 
2. decrease
3. remain the same 
4. may increase or decrease depending on the mass of the block

Subtopic:  Spring mass system |
 63%
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A particle executes S.H.M with amplitude A. If the time taken by the particle to travel from -A to A/2 is 4 seconds, its time period is 

1.  4s

2.  8s 

3.  12 s

4.  18 s

Subtopic:  Phasor Diagram |
 79%
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Two simple harmonic motions are represented by y1 = 6 sin2πt + π3 and y2 = 3sin 2πt + cos 2πtThe ratio of their amplitudes is

1.  2

2.  23

3.  12

4.  22

Subtopic:  Simple Harmonic Motion |
 67%
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A disc executes S.H.M. about the axis XX' in the plane of the disc as shown in the figure. Its time period of oscillation is:

                                  

1.  π6Rg

2.  2πRg

3.  2π2Rg

4.  π3R2g

Subtopic:  Angular SHM |
 57%
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A spring-block system shown in the figure oscillates with a certain time period. If charge \(q\) is given to the block and a uniform field \(E\) is switched on, then its time period of oscillation is:

             

1. increases
2. decreases 
3. may increase or decrease
4. remains the same

Subtopic:  Combination of Springs |
 58%
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