Answer:
0.082 T
Explanation:
Given:
Frequency of the generator (f) = 60.0 Hz
Maximum emf of the generator (E) = 5200 V
Number of turns (N) = 180
Area per turn (A) = 0.94 m²
Magnetic field magnitude (B) = ?
We know that, the angular frequency of the generator is given as:
[tex]\omega=2\pi f[/tex]
Plug in the value of 'f' and solve for 'ω'. This gives,
[tex]\omega=2\pi\times 60.0=120\pi\ rad/s[/tex]
Now, the maximum emf of the generator is given by the formula:
[tex]E=NAB\omega[/tex]
Rewriting in terms of magnetic field, 'B', we get:
[tex]B=\frac{E}{NA \omega}[/tex]
Plug in the given values and solve for 'B'. This gives,
[tex]B=\frac{5200\ V}{180\times 0.94\ m^2\times 120\pi\ rad/s}\\\\B=\frac{5200\ V}{63786.897}\\\\B=0.082\ T[/tex]
Therefore, the magnitude of the magnetic field in which the coil rotates is 0.082 T.
