A $150 m$ long metal wire connects points $A$ and $B$ . The electric potential at point $B$ is $50 V$ less than that at point $A$ . If the conductivity of the metal is $60 \times 10^{6} m h o / m$ then the magnitude of the current density in the wire is equal to?

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Solution

Step 1: Given Data
Length of the metal wire $l = 150 m$
The potential difference $V = 50 V$
The conductivity of the metal $σ = 60 \times 10^{6} m h o / m$
Step 2: Estimate the Resistance
We know that resistivity,
$ρ = \frac{1}{σ} = \frac{1}{60 \times 10^{6}} Ω m$
We know that resistance,
$R = ρ \frac{l}{A}$
$= \frac{1}{60 \times 10^{6}} \times \frac{150}{A}$
$= \frac{2.5 \times 10^{- 6}}{A} Ω$
Step 3: Calculate the Current
According to Ohm's law, the current is given as
$I = \frac{V}{R}$
$= \frac{50 \times A}{2.5 \times 10^{- 6}}$
$= 20 A \times 10^{6} A$
Step 4: Calculate the Current Density
We know that the current density,
$J = \frac{I}{A}$
$= \frac{20 A \times 10^{6}}{A}$
$= 20 \times 10^{6} A / m^{2}$
Hence, the magnitude of the current density in the wire is equal to $20 \times 10^{6} A / m^{2}$ .

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