A single-turn square loop of wire, 2.00 cm on a side, carries a counterclockwise current of 0.200 A. The loop is inside a solenoid, with the plane of the loop perpendicular to the magnetic field of the solenoid. The solenoid has 30 turns per centimeter and carries a counterclockwise current of 10.0 A. Find the force on each side of the loop and the torque acting on the loop.
N (top side)
N (bottom side)
N (left side)
N (right side)
Nm (torque)
2007-03-05 06:49:47 · 2 answers · asked by guitarx313 1 in Science & Mathematics ➔ Physics
The magnetic field in the solenoid is :
B = Uo*(N / L )*I
I = current in the solenoid
N/L = 30*100
Uo = 4*pi*10^-7
So :
B = 4*pi*10^-7*30*100*10 = 12*pi*10^-3 (Tesla)
We have the magnetic field that is acting on the square loop of wire.
Now, we know that the force on each side of the loop will be :
F = I*L*B*SIN(angle)
B = 12*pi*10^-3
I = 0.2 Ampere
L = (2/100) meters
the angle is 90 degrees, because you said, that the plane fo the loop is perpendicular to the magnetic field
so : F = 0.2*(2/100)*12*pi*10^-3 = 48*pi*10^-6 (Newtons)
This force will have the same value for each side, because it's a square, so the have the same lenght, and also, because the magnetic field is perpendicular to each side.
F1 = F2 = F3 = F4 = 48*pi*10^-6 (Newtons)
Now, the torque, here you need to know :
Torque = N*I*A*B*sin(angle)
B = 12*pi*10^-3 (Tesla)
sin(90) = 1, the torque acting on the loop :
0.2*(2/100)^2*12*pi*10^-3*1 = 96*10^-8 N.m
Hope that might help you
2007-03-05 07:22:29 · answer #1 · answered by anakin_louix 6 · 3⤊ 0⤋
The torque acting on the loop is zero
2014-04-02 12:41:41 · answer #2 · answered by ? 2 · 0⤊ 0⤋