Question:

Two long parallel wires carrying currents $8 A$ and $15 A$ in opposite directions are placed at a distance of $7 cm$ from each other A point $P$ is at equidistant from both the wires such that the lines joining the point $P$ to the wires are perpendicular to each other The magnitude of magnetic field at $P$ is___$\times 10^{-6} T$(Given : $\sqrt{2}=1.4$ )

Updated On: Mar 19, 2025
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Correct Answer: 68

Approach Solution - 1

The correct answer is 68

Magnetic fields due to both wires will be perpendicular to each other.



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The magnetic field produced by each wire at point P can be calculated using the Biot-Savart Law: \[ B = \frac{\mu_0 I}{2\pi d} \] For the 8A current: \[ B_1 = \frac{\mu_0 \times 8}{2\pi \times 7 \times 10^{-2}} \] For the 15A current: \[ B_2 = \frac{\mu_0 \times 15}{2\pi \times 7 \times 10^{-2}} \] Since the currents are flowing in opposite directions and point P is equidistant from both, the net magnetic field \( B_{\text{net}} \) is the vector sum of \( B_1 \) and \( B_2 \): \[ B_{\text{net}} = \sqrt{B_1^2 + B_2^2} \Rightarrow \frac{\mu_0}{2\pi d} \sqrt{i_1^2 + i_2^2} \] \[ \Rightarrow \frac{4\pi \times 10^{-7}}{2\pi \times \left(\frac{7}{\sqrt{2}}\right) \times 10^{-2}} \times \sqrt{8^2 + 15^2} \quad \left( d = \frac{7}{\sqrt{2}} \, \text{cm} \right) \] Using the approximation \( \sqrt{2} = 1.4 \), we find that \( B_{\text{net}} = 68 \times 10^{-6} \, \text{T} \).
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Concepts Used:

Moving Charges and Magnetism

Moving charges generate an electric field and the rate of flow of charge is known as current. This is the basic concept in Electrostatics. Another important concept related to moving electric charges is the magnetic effect of current. Magnetism is caused by the current.

Magnetism:

  • The relationship between a Moving Charge and Magnetism is that Magnetism is produced by the movement of charges.
  • And Magnetism is a property that is displayed by Magnets and produced by moving charges, which results in objects being attracted or pushed away.

Magnetic Field:

Region in space around a magnet where the Magnet has its Magnetic effect is called the Magnetic field of the Magnet. Let us suppose that there is a point charge q (moving with a velocity v and, located at r at a given time t) in presence of both the electric field E (r) and the magnetic field B (r). The force on an electric charge q due to both of them can be written as,

F = q [ E (r) + v × B (r)] ≡ EElectric +Fmagnetic 

This force was based on the extensive experiments of Ampere and others. It is called the Lorentz force.