A secondary cell after long use has an emf of \(1.9\) V and a large internal resistance of \(380~\Omega\). What maximum current can be drawn from the cell?
1. \(0.05~\text{A}\)
2. \(0.005~\text{A}\)
3. \(5.0~\text{A}\)
4. \(0.5~\text{A}\)

Subtopic:  EMF & Terminal Voltage |
 87%
From NCERT
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NEET 2023 - Target Batch - Aryan Raj Singh
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The storage battery of a car has an emf of \(12\) V. If the internal resistance of the battery is \(0.4~\Omega\), what is the maximum current that can be drawn from the battery?
1. \(30\) A
2. \(20\) A
3. \(10\) A
4. \(40\) A

Subtopic:  EMF & Terminal Voltage |
 86%
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A battery of emf 10 V and internal resistance 3 Ω is connected to a resistor. If the current in the circuit is 0.5 A, what is the terminal voltage of the battery when the circuit is closed?

1. 10 V
2. 8.5 V
3. 1.5 V
4. 7.2 V

Subtopic:  EMF & Terminal Voltage |
 79%
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Three resistors 1 Ω, 2 Ω, and 3 Ω are combined in series.  If the combination is connected to a battery of emf 12 V and negligible internal resistance, the potential drop across 2 Ω resistor is:

1. 2 V
2. 5 V
3. 4 V
4. 6 V

Subtopic:  Combination of Resistors |
 78%
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Three resistors 2 Ω, 4Ω, and 5 Ω are combined in parallel. If the combination is connected to a battery of emf 20 V and negligible internal resistance, the total current drawn from the battery is:

1. 10 A
2. 17 A
3. 13 A
4. 19 A

Subtopic:  Combination of Resistors |
 79%
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At room temperature \((27~^\circ \text{C})\) the resistance of a heating element is \(100~\Omega\). What is the temperature of the element if the resistance is found to be \(117~\Omega\)
(Given that the temperature coefficient of the material of the resistor is 
\(1.70\times 10^{-4}~^{\circ}\text{C}^{-1}\))
1. \(1027~^{\circ}\text{C}\)
2. \(1007~^{\circ}\text{C}\)
3. \(1020~^{\circ}\text{C}\)
4. 
\(1127~^{\circ}\text{C}\)

Subtopic:  Heating Effects of Current |
 73%
From NCERT
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A negligibly small current is passed through a wire of length \(15~\text{m}\) and uniform cross-section \(6.0\times10^{-7}\) m2, and its resistance is measured to be \(5.0~\Omega.\) What is the resistivity of the material at the temperature of the experiment?

1. \(1\times 10^{-7}~\mathrm{\Omega m}\) 2. \(2\times 10^{-7}~\mathrm{\Omega m}\)
3. \(3\times 10^{-7}~\mathrm{\Omega m}\) 4. \(1.6\times 10^{-7}~\mathrm{\Omega m}\)
Subtopic:  Derivation of Ohm's Law |
 86%
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A silver wire has a resistance of 2.1 Ω at 27.5 °C, and a resistance of 2.7 Ω at 100 °C. The temperature coefficient of resistivity of silver is:

1.\(0.0033 \ ^{o}C^{-1}\)
2. \(0.039 \ ^{o}C^{-1}\)

3.\(0.0039 \ ^{o}C^{-1}\)  
4.
\(0.033 \ ^{o}C^{-1}\)

Subtopic:  Derivation of Ohm's Law |
 65%
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The current drawn from a 12 V supply with internal resistance 0.5 Ω by the infinite network (shown in the figure) is:

1. 3.12 A
2. 3.72 A
3. 2.29 A
4. 2.37 A

Subtopic:  Combination of Resistors |
 66%
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Figure shows a potentiometer with a cell of 2.0 V and internal resistance 0.40 Ω maintaining a potential drop across the resistor wire AB. A standard cell which maintains a constant emf of 1.02 V (for very moderate currents up to a few mA) gives a balance point at 67.3 cm length of the wire. To ensure very low currents drawn from the standard cell, a very high resistance of 600 kΩ is put in series with it, which is shorted close to the balance point. The standard cell is then replaced by a cell of unknown emf ε and the balance point found similarly, turns out to be at 82.3 cm length of the wire. The value of ε is:

1. 1.33 V
2. 1.50 V
3. 1.24 V
4. 1.07 V

Subtopic:  Meter Bridge & Potentiometer |
 56%
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