The amount of charge \(Q\) passed in time \(t\) through a cross-section of a wire is \(Q=(7t^{2}+4t+1)~\text{C}.\) The value of current at time \(t= 6\) seconds is:
1. \( 38~ \text{A} \)
2. \( 27~ \text{A} \)
3. \( 104~ \text{A} \)
4. \( 88~ \text{A}\)

Subtopic:  Current & Current Density |
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The electric current through a wire varies with time as shown in the figure.

The total charge flown across any cross-section of the wire in the time interval \((0 \text-T)\) is:
1. \( {i}_{0}T\) 2. \( \dfrac{{i}_{0}T}{2}\)
3. \( \dfrac{{i}_{0}T}{3}\) 4. \( \dfrac{{i}_{0}T}{\sqrt{2}}\)
Subtopic:  Current & Current Density |
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A uniform metal wire of length \(l\) has \(10~\Omega \) resistance. Now this wire is stretched to a length \(2l\)  and then bent to form a perfect circle. The equivalent resistance across any arbitrary diameter of that circle is:
1. \(10~\Omega \) 2. \(5~\Omega \)
3. \(40~\Omega \) 4. \(20~\Omega \)
Subtopic:  Current & Current Density |
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Level 3: 35%-60%
NEET - 2024
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When no current is passed through a conductor,

(a) the free electrons do not move.
(b) the average speed of a free electron over a large period of time is zero.
(c) the average velocity of a free electron over a large period of time is zero.
(d) the average of the velocities of all the free electrons at an instant is zero.

Choose the correct option: 

1. (a) only  2. (b), (c)
3. (c), (d)  4. (a), (d) 
Subtopic:  Current & Current Density |
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Choose the incorrect statement out of the following:

1. the relation \(V\text=IR\) applies to ohmic as well as non-ohmic conductors.
2. the relation \(\vec{E} = \rho \vec{j}\) applies to all conducting devices, where \(\vec{E}\) is the electric field, \(\vec{j}\) is the current density, and \(\rho\) is resistivity.
3. the resistance of an ohmic conductor is constant at a given temperature.
4. the resistance of a non-ohmic conductor is a function of the applied voltage.
Subtopic:  Current & Current Density |
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A copper wire of length \(10\) m and radius \(\left({10^{-2}/\sqrt{\pi}}\right)\) m has an electrical resistance of \(10~\Omega.\) The current density in the wire for an electric field strength of \(10\) (V/m) is: 
1. \(10^{5}\) A/m2
2. \(10^{4}\) A/m2
3. \(10^{6}\) A/m2
4. \(10^{-5}\) A/m2
Subtopic:  Current & Current Density |
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NEET - 2022
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Consider a current carrying wire (current \(\text{I}\)) in the shape of a circle. Note that as the current progresses along the wire, the direction of \(\text{j}\) (current density) changes in an exact manner, while the current \(\text{I}\) remains unaffected. The agent that is essentially responsible for it is:

1. source of emf.
2. the electric field produced by charges accumulated on the surface of the wire.
3. the charges just behind a given segment of wire which push them just the right way by repulsion.
4. the charges ahead.

Subtopic:  Current & Current Density |
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When a current \(i\) flows through a conductor, the drift velocity of free electrons is \(v.\) If the current is increased to \(2i,\) and the cross-sectional area of the conductor is doubled, what will be the new drift velocity of the free electrons?
1. \(\dfrac{v}{4}\) 2. \(\dfrac{v}{2}\)
3. \(v\) 4. \(4v\)
Subtopic:  Current & Current Density |
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Match Column-I and Column-II with appropriate relations.

Column-I Column-II
\(\mathrm{(A)}\) Drift Velocity \(\mathrm{(P)}\) \(\dfrac{{m}}{{ne}^2 \rho}\)
\(\mathrm{(B)}\) Electrical Resistivity \(\mathrm{(Q)}\) \(nev_d\)
\(\mathrm{(C)}\) Relaxation Period \(\mathrm{(R)}\) \(\dfrac{ {eE}}{{m}} \tau\)
\(\mathrm{(D)}\) Current Density \(\mathrm{(S)}\) \(\dfrac{E}{J}\)
 
\(\mathrm{(A)}\) \(\mathrm{(B)}\) \(\mathrm{(C)}\) \(\mathrm{(D)}\)
1. \(\mathrm{(R)}\) \(\mathrm{(P)}\) \(\mathrm{(S)}\) \(\mathrm{(Q)}\)
2. \(\mathrm{(R)}\) \(\mathrm{(Q)}\) \(\mathrm{(S)}\) \(\mathrm{(P)}\)
3. \(\mathrm{(R)}\) \(\mathrm{(S)}\) \(\mathrm{(P)}\) \(\mathrm{(Q)}\)
4. \(\mathrm{(R)}\) \(\mathrm{(S)}\) \(\mathrm{(Q)}\) \(\mathrm{(P)}\)
Subtopic:  Current & Current Density |
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NEET - 2021
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Drift velocity \(v_{d}\) varies with the intensity of the electric field as:

1. \(v_{d}\propto E^{0}\) 2. \(v_{d}\propto E\)
3. \(v_{d}\propto E^{-1}\) 4. \(v_{d}\propto E^{1/2}\)
Subtopic:  Current & Current Density |
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