Physics for Scientists and Engineers: Foundations and Connections
Physics for Scientists and Engineers: Foundations and Connections
15th Edition
ISBN: 9781305289963
Author: Debora M. Katz
Publisher: Cengage Custom Learning
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Chapter 30, Problem 83PQ

Two infinitely long current-carrying wires run parallel in the xy plane and are each a distance d = 11.0 cm from the y axis (Fig. P30.83). The current in both wires is I = 5.00 A in the negative y direction.

  1. a. Draw a sketch of the magnetic field pattern in the xz plane due to the two wires. What is the magnitude of the magnetic field due to the two wires
  2. b. at the origin and
  3. c. as a function of z along the z axis, at x = y = 0?

Chapter 30, Problem 83PQ, Two infinitely long current-carrying wires run parallel in the xy plane and are each a distance d =

FIGURE P30.83

(a)

Expert Solution
Check Mark
To determine

The sketch of the magnetic field pattern in the x-z plane due to the two wires.

Answer to Problem 83PQ

The direction of the magnetic field pattern in x-z plane is shown in figure (a).

Explanation of Solution

The direction of the magnetic field for a current carrying wire is given by the Right Hand Palm rule.

According to the right hand palm rule, the thumb of the right hand points in the direction of the current flowing in the wire, the fingers point along the point at which the magnetic field is to be calculated then the palm faces towards the direction of the magnetic field.

Here, the direction of magnetic field due to both wires is in anticlockwise direction.

Physics for Scientists and Engineers: Foundations and Connections, Chapter 30, Problem 83PQ , additional homework tip  1

Conclusion:

Thus, the direction of the magnetic field pattern in x-z plane is shown in figure (a).

(b)

Expert Solution
Check Mark
To determine

The magnitude of the magnetic field due to the two wires at the origin.

Answer to Problem 83PQ

The magnitude of the magnetic field due to the two wires at the origin in zero.

Explanation of Solution

The direction of the magnetic field due to first wire and the second wire is shown as.

Physics for Scientists and Engineers: Foundations and Connections, Chapter 30, Problem 83PQ , additional homework tip  2

Write the expression forthe magnetic field due to first wire.

  B1=μ0I2πd(k^)                                                                                                   (I)

Here B1 is the magnetic field due to first wire, I is the current, d is the distance of the origin from the wire.

Write the expression for the magnetic field due to second wire.

  B2=μ0I2πd(k^)                                                                                               (II)

Here B2 is the magnetic field due to first wire, I is the current and d is the distance of the origin from the wire.

Write the expression for the net magnetic field at the origin as.

  Bnet=B1+B2                                                                                             (III)

Here, Bnet is the net magnetic field at origin.

Conclusion:

Substitute (μ0I2πd(k^)) for B1 and (μ0I2πd(k^)) for B2 in equation (III).

  Bnet=(μ0I2πd(k^))+(μ0I2πd(k^))=0

Hence, the net magnetic field at the origin will be zero.

(c)

Expert Solution
Check Mark
To determine

The magnitude of the magnetic field due to two wire as a function of z along the z-axis.

Answer to Problem 83PQ

The magnetic field due to two wires as a  function of z along the Z-axis is (2×106)z(1.21×102)+z2i^T.

Explanation of Solution

The direction of the magnetic field for a current carrying wire is given by the Right Hand Palm rule.

The magnetic field due to both wires will be in negative X-direction at some point z above the origin.

Write the expression for the magnetic field due to first wire as.

  B1=μ0I2πrsinθ(i^)                                                                                     (IV)

Here, B1 is the magnetic field at point along Z-axis, μ0 is the permeability of free space, I is the current in the wire, θ is the angle between r and x axis and r is the distance between the wire and the point along the Z-axis.

The net magnetic field due to the second wire is same as that of the magnetic field due to the first wire.

Write the expression for the magnetic field due to second wire as.

  B2=μ0I2πrsinθ(i^)                                                                                     (V)

Here, B2 is the magnetic field at point along Z-axis.

The distance of the point along the Z-axis from the wire is given by the Pythagoras theorem.

Write the expression for the distance r from the wire as.

  r=(z2+d2)                                                                                          (VI)

Here, z is the vertical distance along the Z-axis and d is the horizontal distance.

Write the expression for the angle made by the position vector with the horizontal as.

  sinθ=zr

Substitute (z2+d2) for r in above equation.

  sinθ=z(z2+d2)                                                                                    (VII)

Write the expression for the net magnetic field as.

  Bnet=B1+B2                                                                                           (VIII)

Here, Bnet is the net magnetic field.

Conclusion:

Substitute z(z2+d2) for sinθ, (z2+d2) for r in equation (IV).

  B1=μ0I2π(z2+d2)×z(z2+d2)(i^)=μ0Iz2π(z2+d2)(i^)

Substitute z(z2+d2) for sinθ, (z2+d2) for r in equation (V).

  B2=μ0I2π(z2+d2)×z(z2+d2)(i^)=μ0Iz2π(z2+d2)(i^)

Substitute μ0Iz2π(z2+d2)(i^) for B1 and μ0Iz2π(z2+d2)(i^) for B2 in equation (VI).

  Bnet=(μ0Iz2π(z2+d2)(i^))+(μ0Iz2π(z2+d2)(i^))=μ0Izπ(z2+d2)(i^)

Substitute 4π×107TmA for μ0, 5.00A for I and 11.0cm for d in above equation.

  Bnet=(4π×107TmA)(5.00A)zπ(z2+(11.0cm)2)(i^)=(2×106)z(z2+(11.0cm(1m100cm))2)(i^)=(2×106)z(1.21×102)+z2i^T

Thus, the magnetic field due to two wires as a  function of z along the Z-axis is (2×106)z(1.21×102)+z2i^T.

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Chapter 30 Solutions

Physics for Scientists and Engineers: Foundations and Connections

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