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Q.Read the following passage carefully and answer the questions given below - Ampere's circuital law is not new content from Biot-Savart law. Both relate the magnetic field and the current, and both express the same physical consequences of a steady electric current. Ampere's law is to Biot-Savart law, what Gauss's law is to Coulomb's law. Both Ampere's law and Gauss's law relate a physical quantity on the periphery or boundary (magnetic or electric field) to another physical quantity, namely the source in the interior (current or charge).

(a) Write Ampere's circuital law. [1 mark]
(b) Ampere's circuital law and Biot-Savart law are both used to find the magnetic field due to a current carrying conductor. What is the main difference between these two laws? [1 mark]
(c) A long straight wire of circular cross-section (radius a) is carrying a steady current I. The current I is uniformly distributed across this cross-section. Calculate the magnetic field at point P located at a distance r from the centre of the cross-section of the wire, where r > a. [2 marks]
Uttarakhand UbseUttarakhand Board Intermediate (Class 12) 2024Subjective· 4mImportance★★★★★
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Ampere's circuital law, applied with a suitable symmetric closed loop, is the quick way to get the field outside a current-carrying wire.

  1. Ampere's circuital law: The line integral of the magnetic field B⃗\vec{B} around any closed loop equals μ0\mu_0 times the total (steady) current enclosed by that loop: ∮B⃗⋅dl⃗=μ0Ienc\oint \vec{B}\cdot d\vec{l} = \mu_0 I_{enc}
  2. Main difference: The Biot-Savart law gives the magnetic field due to a current distribution by direct vector integration over every current element, and works for any current configuration however complicated -- but the integration can be mathematically difficult. Ampere's circuital law instead relates the line integral of BB around a closed (Amperian) loop to the current it encloses; it gives the field very quickly and simply, but only when the current distribution has enough symmetry (e.g., an infinite straight wire, a solenoid, a toroid) to allow a loop on which BB is constant (or has some other simplifying symmetry) to be chosen. …

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