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Question 41 of 55

Q.(a) Explain the term 'drift velocity' of electrons in a conductor. Hence obtain the expression for current through a conductor in terms of drift velocity. (1+2)

(b) A potential difference of 5 V is applied across a conductor of length 0.1 m. Calculate the drift velocity of electrons, if the electron mobility is 5.6×10^-6 m^2 V^-1 S^-1.
(2) OR
(a) What is a Wheatstone bridge? Apply Kirchhoff's rules of electric circuits to obtain the condition for balancing Wheatstone bridge. (1+2)
(b) Draw a circuit diagram for a metre bridge to determine the unknown resistance of a resistor. (2)
West Bengal WbchseWest Bengal HS (WBCHSE) Board 2023Subjective· 5mImportance★★★★★
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Drift velocity is the small net average velocity of free electrons along the wire under an electric field; multiplying by charge density and area gives I = nAev_d, and substituting the given values yields v_d = 2.8×10⁻⁴ m/s.

(a) Drift velocity and current:

In a conductor, free electrons are in continuous random thermal motion, so their average velocity in any direction is zero in the absence of an applied field. When an electric field EE is applied (e.g. by connecting a battery), each electron experiences a force −eE-eE and accelerates between collisions with the lattice ions; these frequent collisions randomise the motion again, but on average, the electrons acquire a small net velocity component along the direction opposite to the field (since electrons are negatively charged), superimposed on their random thermal motion. This small net average velocity is called the drift velocity vdv_d.

Expression for current in terms of drift velocity: Consider a conductor of cross-sectional area AA with nn free electrons per unit volume, each of charge ee, drifting with average speed vdv_d. In a small time dtdt, electrons within a distance vd dtv_d\,dt of any cross-section will cross it. The volume of this region is A⋅vd dtA\cdot v_d\,dt, so the number of electrons crossing is n⋅Avd dtn\cdot A v_d\,dt, and the charge crossing is dq=nAvde dtdq = n A v_d e\,dt.

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