The instantaneous values of alternating current and voltages in a circuit are given as,
\(i=\frac{1}{\sqrt{2}}\sin\left(100\pi t \right )~\text{Ampere}\)
\(e=\frac{1}{\sqrt{2}}\sin\left(100\pi t+\pi /3 \right)~\text{Volt}\)
What is the average power consumed by the circuit in watts?
1. \( \frac{\sqrt{3}}{4} \) 2. \( \frac{1}{2} \)
3. \( \frac{1}{8} \) 4. \( \frac{1}{4}\)
Subtopic:  Power factor |
 76%
Level 2: 60%+
AIPMT - 2012
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The power dissipated in the circuit shown in the figure is \(30~\text{Watts}\). The value of \(R\) is:
    
1. \(15~\Omega\)
2. \(10~\Omega\)
3. \(30~\Omega\)
4. \(20~\Omega\)

Subtopic:  Heating Effects of Current |
 87%
Level 1: 80%+
AIPMT - 2012
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The dimensions of (μ0ε0)-1/2 are:

1.  [ L-1T ]

2.  [ LT-1 ]

3.  [ L1/2T1/2 ]

4. [ L1/2T-1/2 ]

Subtopic:  Dimensions |
 80%
Level 1: 80%+
AIPMT - 2012
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An ideal gas goes from state \(A\) to state \(B\) via three different processes as indicated in the \((P\text-V)\) diagram.

  
If \(Q_1,Q_2,Q_3\) indicate the heat absorbed by the gas along the three processes and \(\Delta U_1, \Delta U_2, \Delta U_3\) indicate the change in internal energy along the three processes respectively, then:

1. \(Q_3>Q_2>Q_1\) and \(\Delta U_1= \Delta U_2= \Delta U_3\)
2. \(Q_1=Q_2=Q_3\) and \(\Delta U_1> \Delta U_2> \Delta U_3\)
3. \(Q_3>Q_2>Q_1\) and \(\Delta U_1> \Delta U_2> \Delta U_3\)
4. \(Q_1>Q_2>Q_3\) and \(\Delta U_1= \Delta U_2= \Delta U_3\)
Subtopic:  First Law of Thermodynamics |
 82%
Level 1: 80%+
AIPMT - 2012
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To get output \(Y = 1\) in the given circuit which of the following input will be correct?

 

\(A\) \(B\) \(C\)
1. 1 0 1
2. 1 1 0
3. 0 1 0
4. 1 0 0

Subtopic:  Logic gates |
 92%
Level 1: 80%+
AIPMT - 2012
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Two metallic spheres of radii \(1~\text{cm}\) and \(3~\text{cm}\) are given charges of \(-1\times 10^{-2}~\text{C}\) and \(5\times 10^{-2} ~\text{C}\), respectively. If these are connected by a conducting wire, then the final charge on the bigger sphere is:

1. \(3\times 10^{-2}~ \text{C}\) 2. \(4\times 10^{-2}~\text{C}\)
3. \(1\times 10^{-2}~\text{C}\) 4. \(2\times 10^{-2}~\text{C}\)
Subtopic:  Electric Potential |
 69%
Level 2: 60%+
AIPMT - 2012
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Two radiations of photons energies \(1\) eV and \(2.5\) eV, successively illuminate a photosensitive metallic surface of work function \(0.5\) eV. The ratio of the maximum speeds of the emitted electrons is:
1. \(1:2\)
2. \(1:1\)
3. \(1:5\) 
4. \(1:4\)

Subtopic:  Electron Emission |
 79%
Level 2: 60%+
AIPMT - 2012
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The moment of inertia of a uniform circular disc is maximum about an axis perpendicular to the disc and passing through:

         
1. \(C\)
2. \(D\)
3. \(A\)
4. \(B\)

Subtopic:  Moment of Inertia |
 80%
Level 1: 80%+
AIPMT - 2012
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A train moving at a speed of 220 ms-1 towards a stationary object, emits a sound of frequency 1000 Hz. Some of the sound reaching the object gets reflected back to the train as an echo. The frequency of the echo as detected by the driver of the train is:(speed of sound in air is 330 ms-1)

1.  4000 Hz 

2.  5000 Hz 

3.  3000 Hz 

4.  3500 Hz

 67%
Level 2: 60%+
AIPMT - 2012
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The half-life of a radioactive nucleus is 50 days. The time interval (t2-t1) between the time t2 when 23 of it has decayed and the time t1 when 13 of it had decayed is:

1.  50 days 

2.  60 days 

3.  15 days 

4.  30 days 

 70%
Level 2: 60%+
AIPMT - 2012
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