A partricle is executing a simple harmonic motion. Its maximum acceleration is α and maximum velocity is  β. Then, its time period of vibration will be

(1)β22 

(2)α/β

(3)β2

(4)2πβ/α 

Subtopic:  Simple Harmonic Motion |
 85%
From NCERT
NEET - 2015
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The period of oscillation of a mass \(M\) suspended from a spring of negligible mass is \(T.\) If along with it another mass \(M\) is also suspended, the period of oscillation will now be:
1. \(T\)
2. \(T/\sqrt{2}\)
3. \(2T\)
4. \(\sqrt{2} T\)

Subtopic:  Linear SHM |
 76%
From NCERT
NEET - 2010
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A body performs simple harmonic motion about \(x=0\) with an amplitude a and a time period \(T\). The speed of the body at \(x= \frac{a}{2}\) will be:
1. \(\frac{\pi a\sqrt{3}}{2T}\)
2. \(\frac{\pi a}{T}\)
3. \(\frac{3\pi^2 a}{T}\)
4. \(\frac{\pi a\sqrt{3}}{T}\)
Subtopic:  Linear SHM |
 77%
From NCERT
NEET - 2009
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Two simple harmonic motions of angular frequency \(100~\text{rad s}^{-1}\) and \(1000~\text{rad s}^{-1}\) have the same displacement amplitude. The ratio of their maximum acceleration will be:
1. \(1:10\)
2. \(1:10^{2}\)
3. \(1:10^{3}\)
4. \(1:10^{4}\)

Subtopic:  Linear SHM |
 86%
From NCERT
NEET - 2008
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The displacement of a particle moving in S.H.M. at any instant is given by y=a sinωt . The acceleration after time t=T4 (where T is the time period) -

1. aω                         

2.-aω

3. aω2                         

4.  -aω2

 

Subtopic:  Simple Harmonic Motion |
 87%
From NCERT
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A particle executes simple harmonic motion along a straight line with an amplitude A. The potential energy is maximum when the displacement is

1.  ±A          

2.  Zero

3.  ±A2         

4.  ±A2

Subtopic:  Energy of SHM |
 81%
From NCERT
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The potential energy of a particle with displacement X depends as U(X). The motion is simple harmonic, when (K is a positive constant)

1. U=KX22                 

2. U=KX2   

3.  U=K                       

4. U=KX 

Subtopic:  Energy of SHM |
 81%
From NCERT
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­­A man measures the period of a simple pendulum inside a stationary lift and finds it to be T sec. If the lift accelerates upwards with an acceleration g4 , then the period of the pendulum will be

1. T

2. T4

3. 2T5

4. 2T5

Subtopic:  Angular SHM |
 83%
From NCERT
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The total energy of a particle, executing simple harmonic motion is

1.  x                 

2.  x2

3. Independent of x 

4. x1/2

Subtopic:  Energy of SHM |
 76%
From NCERT
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A simple pendulum is suspended from the roof of a trolley which moves in a horizontal direction with an acceleration a, then the time period is given by T=2πlg',  where g'   is equal to

1. g                                                       

2. g-a

3. g+a

4. g2+a2

Subtopic:  Angular SHM |
 87%
From NCERT
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