Answer:
the magnitude of the torque on the wire loop is 4.1185 N.m
Explanation:
Given the data in the question;
Area of circular loop A = πr²
given that radius = 66.5 cm = 0.665 m
Area of circular loop A = π( 0.665 m )² = 1.38929 m²
Magnitude of Torque T = M × B × sin∅
where M is the magnetic moment
∅ is the angle between M¬ and B¬
given that mA847 mA = 0.847 A
so |M¬| = 0.847 × 1.38929 m² = 1.1767; directed vertically upward
given that the loop sits in a uniform magnetic field of 3.5 T that is oriented in the horizontal x direction
B¬ = 3.5 T (i^)
so ∅ between M¬ and B¬ is 90°
from the initial formula
Magnitude of Torque T = M × B × sin∅
we substitute in our values;
Magnitude of Torque T = 1.1767 × 3.5 × sin90°
= 1.1767 × 3.5 × 1
= 4.1185 N.m
Therefore, the magnitude of the torque on the wire loop is 4.1185 N.m