Principles of Physics: A Calculus-Based Text, Hybrid (with Enhanced WebAssign Printed Access Card)
Principles of Physics: A Calculus-Based Text, Hybrid (with Enhanced WebAssign Printed Access Card)
5th Edition
ISBN: 9781305586871
Author: Raymond A. Serway, John W. Jewett
Publisher: Cengage Learning
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Chapter 22, Problem 41P

(a)

To determine

The magnetic field at the center of the square.

(a)

Expert Solution
Check Mark

Answer to Problem 41P

The magnetic field at the center of the square is 28.3μT into the page.

Explanation of Solution

Principles of Physics: A Calculus-Based Text, Hybrid (with Enhanced WebAssign Printed Access Card), Chapter 22, Problem 41P

Write the expression for the magnetic field at the point A.

  B=μoi4π(l2)(cosθcos(180°ϕ))        (I)

Here, Ba is the magnetic field at the center due to the segment a, i is the current in the coil, l2 is the perpendicular distance between the point A and the side BC , μ0 is the permeability of the free space, θ is the angle between the side of the triangle AB and BC .

Conclusion:

Substitute 4π×107Tm/A for μ0 , 45° for θ45° for ϕ, 0.400m for l and 10.0A for i in the expression (I)  due to segments a

    Ba=μoi4π(l2)(cosθcos(180°ϕ))=(4π×107Tm/A)(10.0A)4π(0.400m2)(cos45°cos(180°45°))=(4π×107Tm/A)(10.0A)4π(0.400m2)(cos45°cos(135°))

Similarly from the expression (I) write the expression for segment b  of the square.

    Bb=μoi4π(l2)(cosθcos(180°ϕ))=(4π×107Tm/A)(10.0A)4π(0.400m2)(cos45°cos(180°45°))=(4π×107Tm/A)(10.0A)4π(0.400m2)(cos45°cos(135°))

Similarly from the expression (I) write the expression for segment c of the square.

    Bc=μoi4π(l2)(cosθcos(180°ϕ))=(4π×107Tm/A)(10.0A)4π(0.400m2)(cos45°cos(180°45°))=(4π×107Tm/A)(10.0A)4π(0.400m2)(cos45°cos(135°))

Similarly from the expression (I) write the expression for segment d of the square.

    Bd=μoi4π(l2)(cosθcos(180°ϕ))=(4π×107Tm/A)(10.0A)4π(0.400m2)(cos45°cos(180°45°))=(4π×107Tm/A)(10.0A)4π(0.400m2)(cos45°cos(135°))

Write the expression for the magnetic field at the center of the square due to the current in the wire i.

    B=Ba+Bb+Bc+Bd        (II)

Substitute (4π×107Tm/A)(10.0A)4π(0.400m2)(cos45°cos(135°)) for Ba,Bb,Bc,Bd in the expression (II),

    B=4×((4π×107Tm/A)(10.0A)4π(0.400m2)(cos45°cos(135°)))=4×((4π×107Tm/A)(10.0A)4π(0.400m2)(0.7071+0.7071))=28.3×106T×106μT1T=28.3μT

The magnetic field at the center of the square is 28.3μT into the page.

(b)

To determine

The magnetic field at the center of the circle.

(b)

Expert Solution
Check Mark

Answer to Problem 41P

The magnetic field at the center of the circle is 28.7μT and into the page.

Explanation of Solution

Write the expression for the perimeter of the circle

  4l=2πr2r=4lπ        (I)

Here, 4l is the perimeter of the square.

Write the expression for the magnetic field at the center of the circle.

  Bc=μ0i2r        (II)

Here, μ0 is the permeability of the free space, i is the current in the wire, r is the radius of the circle.                      

Conclusion:

Substitute 4lπ for 2r in expression (II)

    Bc=μ0i4lπ=μ0iπ4l        (III)

Substitute 4π×107Tm/A for μ0,, 0.400m for l and 10.0A for i in the expression (III)  for the magnetic field at the center of the circle.

    Bc=μ0iπ4l=π(4π×107Tm/A)(10.0A)4(0.400m)=24.7×106T×(106μT1T)=24.7μT

The magnetic field at the center of the circle is 28.7μT and into the page.

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Chapter 22 Solutions

Principles of Physics: A Calculus-Based Text, Hybrid (with Enhanced WebAssign Printed Access Card)

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