Answer:
(a) the magnitude and direction of the electric field in the wire is 4.5 N/C towards the left end of the wire.
(b) the resistance of the wire is 0.1154 Ω
(c) the magnitude and direction of the current in the wire is 27.3 A towards the left end of the wire
(d) the current density in the wire is 4.053 x 10⁸ A/m³
Explanation:
Given;
Length of cylinder = 70cm = 0.7m
radius of cylinder = 1.75 x 10⁻⁴ m
potential V = 3.15 V
resistivity = 1.586 ✕ 10⁻⁸ Ω · m
Part (a) the magnitude and direction of the electric field in the wire
V = E x d
E = V/d
E = 3.15/0.7 = 4.5 N/C towards the left end of the wire.
Part (b) the resistance of the wire
[tex]R = \frac{\rho L}{A} \\\\R =\frac{\rho L}{\pi r^2} =R = \frac{1.586X10^{-8} X 0.7}{\pi (1.75X10^{-4})^2} = 0.1154 ohms[/tex]
R = 0.1154 Ω
Part (c) the magnitude and direction of the current in the wire
V = IR
I =V/R
I = 3.15/0.1154
I = 27.3 A towards the left end of the wire
Part (d) the current density in the wire
current density,J = current /volume
volume = πr²h = π x (1.75 × 10⁻⁴)² x 0.7 = 6.7357 x 10⁻⁸ m³
[tex]J = \frac{27.3}{6.7357 X10^{-8}} = 4.053 X10^8 \frac{A}{m^3}[/tex]
J = 4.053 x 10⁸ A/m³
