A wire of a certain material is stretched slowly by ten percent, it's new resistance and specific resistance become, respectively:

1. 1.2 times, 1.1 times

2. 1.21 times, same

3. both remain the same

4. 1.1 times, 1.1 times

Subtopic:  Combination of Resistors |
 85%
Level 1: 80%+
AIPMT - 2008
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An electric kettle takes \(4~\text{A}\) current at \(220~\text{V}\). How much time will it take to boil \(1\) kg of water at a temperature of \(20^{\circ}\text{C}\)? The temperature of boiling water is \(100^{\circ}\text{C}\).
1. \(6.3\) min 2. \(8.4\) min
3. \(12.6\) min 4. \(4.2\) min
Subtopic:  Heating Effects of Current |
 54%
Level 3: 35%-60%
AIPMT - 2008
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In the phenomenon of electric discharge through gases at low pressure, the colored glow in the tube appears as a result of:
1. excitation of electrons in the atoms
2. a collision between the atoms of the gas
3. collisions between the charged particles emitted from the
cathode and the atoms of the gas
4. a collision between different electrons of the atoms of the gas

Subtopic:  Electron Emission |
 72%
Level 2: 60%+
AIPMT - 2008
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A particle of mass \(1\) mg has the same wavelength as an electron moving with a velocity of  \(3\times 10^{6}\) ms-1. The velocity of the particle is:
(Mass of electron = \(9.1 \times 10^{-31}\) kg)
1. \(2.7 \times 10^{-18}~\text{ms}^{-1}\)
2. \(9 \times 10^{-2}~\text{ms}^{-1}\)
3. \(3 \times 10^{-31}~\text{ms}^{-1}\)
4. \(2.7 \times 10^{-21}~\text{ms}^{-1}\)

Subtopic:  De-broglie Wavelength |
 56%
Level 3: 35%-60%
AIPMT - 2008
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A particle shows the distance-time curve as given in this figure. The maximum instantaneous velocity of the particle is around the point:

                                 

1. \(B\)
2. \(C\)
3. \(D\)
4. \(A\)

Subtopic:  Graphs |
 80%
Level 1: 80%+
AIPMT - 2008
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A cell can be balanced against 100 cm and 110 cm of potentiometer wire, respectively with and without being short-circuited through a resistance of 10 Ω. Its internal resistance is:

1.  1.0 Ω

2.  0.5 Ω

3.  2.0 Ω

4.  zero

 74%
Level 2: 60%+
AIPMT - 2008
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If \(M(A,~Z)\), \(M_p\), and \(M_n\) denote the masses of the nucleus \(^{A}_{Z}X,\) proton, and neutron respectively in units of \(u\) \((1~u=931.5~\text{MeV/c}^2)\) and represent its binding energy \((BE)\) in \(\text{MeV}\). Then:

1. \(M(A, Z) = ZM_p + (A-Z)M_n- \dfrac{BE}{c^2}\)
2. \(M(A, Z) = ZM_p + (A-Z)M_n+ BE\)
3. \(M(A, Z) = ZM_p + (A-Z)M_n- BE\)
4. \(M(A, Z) = ZM_p + (A-Z)M_n+ \dfrac{BE}{c^2}\)
Subtopic:  Mass-Energy Equivalent |
 74%
Level 2: 60%+
AIPMT - 2008
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Three forces acting on a body are shown in the figure. To have the resultant force only along the y-direction, the magnitude of the minimum additional force needed is:
                 

1.  0.5 N

2.  1.5 N

3.  34 N

4.  3 N

Subtopic:  Resultant of Vectors |
 54%
Level 3: 35%-60%
AIPMT - 2008
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Two periodic waves of intensities I1 and I2 pass through a region at the same time in the same direction. The sum of the maximum and minimum intensities is:

1.  2l1+l2

2.  I1+l22

3.  I1-l22

4.  2I1-l2

Subtopic:  Superposition Principle |
 76%
Level 2: 60%+
AIPMT - 2008
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A shell of mass 200 g is ejected from a gun of mass 4 kg by an explosion that generates 1.05 kJ of energy. The initial velocity of the shell is:

1. 100 ms-1

2. 80 ms-1

3. 40 ms-1

4. 120 ms-1

Subtopic:  Collisions |
 58%
Level 3: 35%-60%
AIPMT - 2008
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