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Exercises · 4.4

Q.A horizontal overhead power line carries a current of 90 A90\ \text{A} in east to west direction. What is the magnitude and direction of the magnetic field due to the current 1.5 m1.5\ \text{m} below the line?

Haryana BsehTextbookSubjective· 2mImportance★★★★★
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The magnetic field around a long straight current-carrying wire forms concentric circles. Using the right-hand thumb rule and Biot–Savart’s law, the field 1.5 m1.5\ \text{m} below the line has magnitude 1.2×10−5 T1.2 \times 10^{-5}\ \text{T} and points south.

Why magnetic force balance? — The core idea

This problem is not about forces on charges, but about the magnetic field produced by a current. The key physics: a long straight wire carrying current II creates a magnetic field that circles around it. The field’s magnitude at a perpendicular distance rr is given by Ampere’s law (or Biot–Savart):

B=μ0I2πrB = \frac{\mu_0 I}{2\pi r}

The direction is found using the right-hand thumb rule: point your thumb along the current, and your fingers curl in the direction of the magnetic field lines. For a horizontal wire running east–west, the field below the wire will be purely horizontal — but which way?

Let’s work it out step by step.


  1. Identify the given data

    Current I=90 AI = 90\ \text{A}, direction: east to west.

    Distance below the wire: r=1.5 mr = 1.5\ \text{m}.

    Permeability of free space: μ0=4π×10−7 T⋅m/A\mu_0 = 4\pi \times 10^{-7}\ \text{T·m/A}.

  2. Apply the formula for magnetic field magnitude

    For an infinitely long straight wire (a very good approximation here):

B=μ0I2πrB = \frac{\mu_0 I}{2\pi r}

Substitute values:

B=(4π×10−7)×902π×1.5B = \frac{(4\pi \times 10^{-7}) \times 90}{2\pi \times 1.5}

The π\pi cancels:

B=4×10−7×902×1.5B = \frac{4 \times 10^{-7} \times 90}{2 \times 1.5}

Simplify stepwise:

B=360×10−73=120×10−7=1.2×10−5 TB = \frac{360 \times 10^{-7}}{3} = 120 \times 10^{-7} = 1.2 \times 10^{-5}\ \text{T}

B=μ0I2πrB = \frac{\mu_0 I}{2\pi r}

  1. Determine the direction using the right-hand thumb rule Point your right thumb from east to west (the current direction). Now look at a point below the wire. Your fingers will curl toward the south at that location. …

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