A long iron bar lies along the x-axis and has current of I = 16.4 A running through it in the +x-direction. The bar is in the presence of a uniform magnetic field, perpendicular to the current. There is a magnetic force per unit length on the bar of 0.132 N/m in the −y-direction. (a) What is the magnitude of the magnetic field (in mT) in the region through which the current passes?

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cjmejiab cjmejiab · Answer 1 · 2019-11-20T18:08:16+01:00

Answer:

B = 8.0487mT

Explanation:

To solve the exercise it is necessary to take into account the considerations of the Magnetic Force described by Faraday,

The magnetic force is given by the formula

[tex]F =BILsin\theta[/tex]

Where,

B = Magnetic Field

I = Current

L = Length

[tex]\theta =[/tex] Angle between the magnetic field and the velocity, for this case are perpendicular, then is 90 degrees

According to our data we have that

I = 16.4A

F = 0.132N/m

As we know our equation must be modificated to Force per length unit, that is

[tex]\frac{F}{L} = BI sin(90)[/tex]

Replacing the values we have that

[tex]0.132 = 16.4 (1) B[/tex]

Solving for B,

[tex]B = \frac{0.132}{16.4}[/tex]

[tex]B = 8.0487mT[/tex]