If the cold junction of a thermocouple is kept at \(0^{\circ}\text{C}\) and the hot junction is kept at \(T^{\circ}\text{C}\), then the relation between neutral temperature \((T_{n})\) and temperature of inversion \((T_{i})\) is:
1. \(T_n = \frac{T_i}{2}\)
2. \(T_n = 2T_i\)
3. \(T_n = T_i-T\)
4. \(T_n = T_i+T\)

Subtopic:  Calorimetry |
Level 3: 35%-60%
AIPMT - 2007
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Nickel shows the ferromagnetic property at room temperature. If the temperature is increased beyond Curie's temperature, then it will show:
1. paramagnetism
2. anti-ferromagnetism
3. no magnetic property
4. diamagnetism

Subtopic:  Magnetic Materials |
 87%
Level 1: 80%+
AIPMT - 2007
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In the radioactive decay process, the negatively charged emitted β-particles are:

1. the electrons present inside the nucleus
2. the electrons produced as a result of the decay
of neutrons inside the nucleus
3. the electrons produced as a result of collisions
between atoms
4. the electrons orbiting around the nucleus

Subtopic:  Types of Decay |
 79%
Level 2: 60%+
AIPMT - 2007
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A small coin is resting on the bottom of a beaker filled with a liquid. A ray of light from the coin travels up, to the surface of the liquid and moves along its surface (see figure). 
             
How fast is the light traveling in the liquid?
1. \(1.8 \times 10^8 ~\text{m/s}\) 2. \(2.4 \times 10^8~\text{m/s}\)
3. \(3.0 \times 10^8~\text{m/s}\) 4. \(1.2 \times 10^8~\text{m/s}\)
Subtopic:  Total Internal Reflection |
 65%
Level 2: 60%+
AIPMT - 2007
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What is the value of inductance L for which the current is maximum in a series LCR circuit with C = 10 μF and ω=1000 s-1?

1. 100 mH

2. 1 mH

3. cannot be calculated unless R is known

4. 10 mH

Subtopic:  Different Types of AC Circuits |
 73%
Level 2: 60%+
AIPMT - 2007
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Three-point charges \(+q\), \(-2q\) and \(+q\) are placed at points \((x=0,y=a,z=0)\), \((x=0, y=0,z=0)\) and \((x=a, y=0, z=0)\), respectively. The magnitude and direction of the electric dipole moment vector of this charge assembly are:

1. \(\sqrt{2}qa\) along \(+y\) direction
2. \(\sqrt{2}qa\) along the line joining points \((x=0,y=0,z=0)\) and \((x=a,y=a,z=0)\)
3. \(qa\) along the line joining points \((x=0,y=0,z=0)\) and \((x=a,y=a,z=0)\)
4. \(\sqrt{2}qa\) along \(+x\) direction
Subtopic:  Electric Dipole |
 84%
Level 1: 80%+
AIPMT - 2007
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A nucleus ZXA has a mass represented by \(M(A, Z).\) If \(M_P\) and \(M_n\) denote the mass of proton and neutron respectively and BE the binding energy, then:

1. BE=[M(A,Z)-ZMp-(A-Z)Mn]c2

2. BE=[ZMp+(A-Z)Mn-M(A, Z)]c2

3. BE=[ZMp+AMn-M-(A, Z)]c2

4. BE=M(A, Z)-ZMp-(A-Z)Mn

Subtopic:  Nuclear Binding Energy |
 84%
Level 1: 80%+
AIPMT - 2007
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The position of a particle with respect to time \(t\) along the \({x}\)-axis is given by \(x=9t^{2}-t^{3}\) where \(x\) is in metres and \(t\) in seconds. What will be the position of this particle when it achieves maximum speed along the \(+{x} \text-\text{direction}?\)
1. \(32~\text m\)
2. \(54~\text m\)
3. \(81~\text m\)
4. \(24~\text m\)

Subtopic:  Non Uniform Acceleration |
 79%
Level 2: 60%+
AIPMT - 2007
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The total power dissipated in watts in the circuit shown below is:
                 

1. \(16\) W 2. \(40\) W
3. \(54\) W 4. \(4\) W
Subtopic:  Heating Effects of Current |
 88%
Level 1: 80%+
AIPMT - 2007
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In the following circuit, the output \(Y\) for all possible inputs \(A\) and \(B\) is expressed by the truth table: 
    

1. A B Y 2. A B Y
0 0 0 0 0 1
0 1 0 0 1 1
1 0 0 1 0 1
1 1 1 1 1 0
3. 0 0 1 4. 0 0 0
0 1 0 0 1 1
1 0 0 1 0 1
1 1 1 1 1 1
Subtopic:  Logic gates |
 77%
Level 2: 60%+
AIPMT - 2007
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