EBK COLLEGE PHYSICS, VOLUME 2
EBK COLLEGE PHYSICS, VOLUME 2
11th Edition
ISBN: 9781337514644
Author: Vuille
Publisher: CENGAGE LEARNING - CONSIGNMENT
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Chapter 19, Problem 71AP

a)

To determine

The magnitude and direction of magnetic field at points A .

a)

Expert Solution
Check Mark

Answer to Problem 71AP

The magnetic field at point A will have a magnitude of 53μΤ and will point downward.

Explanation of Solution

Given info: The three conductors are parallel and carry equal currents of magnitude I=2.0A which is directed out of the page.

Explanation:

The arrangement of the wires is given by the following figure.

EBK COLLEGE PHYSICS, VOLUME 2, Chapter 19, Problem 71AP , additional homework tip  1

The magnetic field due to a straight current carrying wire is given by,

B=μ0I2πr       (1)

  • μ0 is the permeability of free space
  • I is the current in the wire
  • r is the distance of the point from the wire

Let B1 be the magnitude of the magnetic field due to the conductor at point 1 , Let B2 be the magnitude of the magnetic field due to the conductor at point 2 , Let B3 be the magnitude of the magnetic field due to the conductor at point 3 .

At point A the B1 will be,

B1=μ0I2π(a2)

At point A the B2 will be,

B2=μ0I2π(a2)

At point A the B2 will be,

B3=μ0I2π(3a)

The horizontal component of B1 and B2 will cancel out each other, where as the vertical component of the magnetic field get added up. The magnetic field at A will have only vertical component and will be directed downward.

The vertical component of the field will be,

Bver=B1cos45°+B2cos45°+B3=μ0I2π(a2)cos45°+μ0I2π(a2)cos45°+μ0I2π(3a)=μ0I2πa(2cos45°+13)

Substitute 2.0A for I , 4π×107TmA-1 for μ0 , 1.0cm for a to determine the vertical component of the net magnetic field at A ,

Bver=(4π×107TmA-1)(2.0A)2π(1.0cm)(2cos45°+13)=(4π×107TmA-1)(2.0A)2π(1.0×102m)(2cos45°+13)=53μΤ

Conclusion: The magnetic field at point A will have a magnitude of 53μΤ and will point downward.

b)

To determine

The magnitude and direction of magnetic field at points B .

b)

Expert Solution
Check Mark

Answer to Problem 71AP

The magnetic field at point B will have a magnitude of 20μΤ and will point downward on the plane of the page.

Explanation of Solution

Given info: The three conductors are parallel and carry equal currents of magnitude I=2.0A which is directed out of the page.

Explanation:

The arrangement of the wires is given by the following figure.

EBK COLLEGE PHYSICS, VOLUME 2, Chapter 19, Problem 71AP , additional homework tip  2

The magnetic field due to a straight current carrying wire is given by,

B=μ0I2πr       (1)

  • μ0 is the permeability of free space
  • I is the current in the wire
  • r is the distance of the point from the wire

Let B1 be the magnitude of the magnetic field due to the conductor at point 1 , Let B2 be the magnitude of the magnetic field due to the conductor at point 2 , Let B3 be the magnitude of the magnetic field due to the conductor at point 3 .

At point B the B1 will be,

B1=μ0I2π(a)

At point B the B2 will be,

B2=μ0I2π(a)

At point B the B3 will be,

B3=μ0I2π(2a)

At the point B , B1 and B2 will cancel out each other as they have equal magnitude and opposite direction. Only B3 will contribute to the magnetic field at point B and will be pointing downward on the plane of the paper.

The magnetic field at point B will be

B=B3=μ0I2π(2a)

Substitute 2.0A for I , 4π×107TmA-1 for μ0 , 1.0cm for a to determine the vertical component of the net magnetic field at A ,

B=(4π×107TmA-1)(2.0A)2π(2(1.0cm))=(4π×107TmA-1)(2.0A)2π(2(1.0×102m))=20μΤ

Conclusion: The magnetic field at point B will have a magnitude of 20μΤ and will point downward on the plane of the page.

c)

To determine

The magnitude and direction of magnetic field at point C .

c)

Expert Solution
Check Mark

Answer to Problem 71AP

The magnetic field at point C will be zero.

Explanation of Solution

Given info: The three conductors are parallel and carry equal currents of magnitude I=2.0A which is directed out of the page.

Explanation:

The arrangement of the wires is given by the following figure.

EBK COLLEGE PHYSICS, VOLUME 2, Chapter 19, Problem 71AP , additional homework tip  3

The magnetic field due to a straight current carrying wire is given by,

B=μ0I2πr       (1)

  • μ0 is the permeability of free space
  • I is the current in the wire
  • r is the distance of the point from the wire

Let B1 be the magnitude of the magnetic field due to the conductor at point 1 , Let B2 be the magnitude of the magnetic field due to the conductor at point 2 , Let B3 be the magnitude of the magnetic field due to the conductor at point 3 .

At point C the B1 will be,

B1=μ0I2π(a2)

At point C the B2 will be,

B2=μ0I2π(a2)

At point C the B3 will be,

B3=μ0I2π(a)

The horizontal component of B1 and B2 will cancel out each other, where as the vertical component of the magnetic field get added up. Considering the upward direction to be positive the net magnetic field will be

The vertical component of the field will be,

Bver=B1sin45°+B2sin45°B3=μ0I2π(a2)sin45°+μ0I2π(a2)sin45°μ0I2π(a)=μ0I2πa(2sin45°1)=0

Conclusion: The magnetic field at point C will be zero.

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Chapter 19 Solutions

EBK COLLEGE PHYSICS, VOLUME 2

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