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Chapter 25, Problem 32PQ

Two long, thin rods each have linear charge density λ = 6.0 μC/m and lie parallel to each other, separated by 20.0 cm as shown in Figure P25.32. Determine the magnitude and direction of the net electric field at point P, a distance of 15.0 cm directly above the right rod.

Chapter 25, Problem 32PQ, Two long, thin rods each have linear charge density  = 6.0 C/m and lie parallel to each other,

Figure P25.32

Expert Solution & Answer
Check Mark
To determine

The magnitude and direction of the net electric field at point P a distance of 15.0cm directly above the right rod.

Answer to Problem 32PQ

The magnitude and direction of the net electric field at point P a distance of 15.0cm directly above the right rod is 1.0×106N/C_ 71°_ above the x axis.

Explanation of Solution

The following figure gives the components of the electric field with direction.

Webassign Printed Access Card For Katz's Physics For Scientists And Engineers: Foundations And Connections, 1st Edition, Single-term, Chapter 25, Problem 32PQ

Write the expression for the electric field due to the right rod.

    ER=λ2πε0rRj^                                                                                                         (I)

Here, λ is the line charge density and rR is the distance of the point P from the right rod.

Write the expression for the electric field due to the left rod.

    EL=λ2πε0rL                                                                                                          (II)

Here, λ is the line charge density and rL is the distance of the point P from the left rod.

Write the expression for the angle θ above the x axis for EL.

    θ=tan1rRrLR                                                                                                         (III)

Here, rLR is the distance between the rods.

Write the expression for the vector field of the left rod.

    EL=EL(cosθi^+sinθj^)                                                                                     (IV)

Write the expression for total electric field.

    Etot=ER+EL                                                                                                        (V)

Write the expression for the magnitude of the electric field.

    E=Ex2+Ey2                                                                                                      (VI)

Here, Ex is the x component of the total electric field and Ey is the y component of the total electric field.

Write the expression for the direction of the electric field.

    φ=tan1EyEx                                                                                                       (VII)

Conclusion:

Substitute 6.0×106C/m for λ, 8.85×1012C2/Nm2 for ε0 and 0.15m for rR in equation (I).

    ER=6.0×106C/m2π(8.85×1012C2/Nm2)(0.15m)j^=7.2×105j^N/C

Substitute 6.0×106C/m for λ, 8.85×1012C2/Nm2 for ε0 and (0.15m)2+(0.20m)2 for rL in equation (II).

    EL=6.0×106C/m2π(8.85×1012C2/Nm2)(0.15m)2+(0.20m)2=4.3×105N/C

Substitute 0.15m for rR and 0.20m for rLR in equation (III).

    θ=tan10.15m0.20m=36.9°

Substitute 4.3×105N/C for EL and 36.9° for θ in equation (IV).

    EL=4.3×105N/C(cos36.9°i^+sin36.9°j^)=(3.4×105i^+2.6×105j^)N/C

Substitute (3.4×105i^+2.6×105j^)N/C for EL and 7.2×105j^N/C for ER in equation (V).

    Etot=7.2×105j^N/C+(3.4×105i^+2.6×105j^)N/C=(3.4×105i^+9.8×105j^)N/C

Substitute 3.4×105N/C for Ex and 9.8×105N/C for Ey in equation (VI).

    E=(3.4×105N/C)2+(9.8×105N/C)2=1.0×106N/C

Substitute 3.4×105N/C for Ex and 9.8×105N/C for Ey in equation (VII).

    φ=tan19.8×105N/C3.4×105N/C=71°

Therefore, the magnitude and direction of the net electric field at point P a distance of 15.0cm directly above the right rod is 1.0×106N/C_ 71°_ above the x axis.

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Chapter 25 Solutions

Webassign Printed Access Card For Katz's Physics For Scientists And Engineers: Foundations And Connections, 1st Edition, Single-term

Ch. 25 - Prob. 4PQCh. 25 - Prob. 5PQCh. 25 - Prob. 6PQCh. 25 - A positively charged sphere and a negatively...Ch. 25 - A circular hoop of radius 0.50 m is immersed in a...Ch. 25 - Prob. 9PQCh. 25 - If the hemisphere (surface C) in Figure 25.10...Ch. 25 - A Ping-Pong paddle with surface area 3.80 102 m2...Ch. 25 - Prob. 12PQCh. 25 - A pyramid has a square base with an area of 4.00...Ch. 25 - Prob. 14PQCh. 25 - Prob. 15PQCh. 25 - A circular loop with radius r is rotating with...Ch. 25 - A circular loop with radius r is rotating with...Ch. 25 - Prob. 18PQCh. 25 - What is the net electric flux through each of the...Ch. 25 - Prob. 20PQCh. 25 - The colored regions in Figure P25.21 represent...Ch. 25 - Prob. 22PQCh. 25 - Prob. 23PQCh. 25 - Three particles and three Gaussian surfaces are...Ch. 25 - A Using Gausss law, find the electric flux through...Ch. 25 - Three point charges q1 = 2.0 nC, q2 = 4.0 nC, and...Ch. 25 - Prob. 27PQCh. 25 - A very long, thin wire fixed along the x axis has...Ch. 25 - Figure P25.29 shows a wry long tube of inner...Ch. 25 - Two very long, thin, charged rods lie in the same...Ch. 25 - Prob. 31PQCh. 25 - Two long, thin rods each have linear charge...Ch. 25 - Figure P25.33 shows a very long, thick rod with...Ch. 25 - A very long line of charge with a linear charge...Ch. 25 - Two infinitely long, parallel lines of charge with...Ch. 25 - An infinitely long wire with uniform linear charge...Ch. 25 - Prob. 37PQCh. 25 - Prob. 38PQCh. 25 - Prob. 39PQCh. 25 - Prob. 40PQCh. 25 - Two uniform spherical charge distributions (Fig....Ch. 25 - FIGURE P25.41 Problems 41 and 42. Two uniform...Ch. 25 - The nonuniform charge density of a solid...Ch. 25 - Prob. 44PQCh. 25 - What is the magnitude of the electric field just...Ch. 25 - Prob. 46PQCh. 25 - The infinite sheets in Figure P25.47 are both...Ch. 25 - Prob. 48PQCh. 25 - Prob. 49PQCh. 25 - Prob. 50PQCh. 25 - A very large, flat slab has uniform volume charge...Ch. 25 - FIGURE P25.41 Problems 51 and 52. Find the surface...Ch. 25 - Prob. 53PQCh. 25 - Prob. 54PQCh. 25 - If the magnitude of the surface charge density of...Ch. 25 - A spherical conducting shell with a radius of...Ch. 25 - A charged rod is placed in the center along the...Ch. 25 - A charged rod is placed in the center along the...Ch. 25 - A thick spherical conducting shell with an inner...Ch. 25 - A thick spherical conducting shell with an inner...Ch. 25 - A rectangular plate with sides 0.60 m and 0.40 m...Ch. 25 - Prob. 62PQCh. 25 - Prob. 63PQCh. 25 - A uniform spherical charge distribution has a...Ch. 25 - A rectangular surface extends from x = 0 to x =...Ch. 25 - A uniform electric field E = 1.57 104 N/C passes...Ch. 25 - A solid plastic sphere of radius R1 = 8.00 cm is...Ch. 25 - Examine the summary on page 780. Why are...Ch. 25 - Prob. 69PQCh. 25 - Prob. 70PQCh. 25 - Prob. 71PQCh. 25 - A coaxial cable is formed by a long, straight wire...Ch. 25 - Prob. 73PQCh. 25 - Prob. 74PQCh. 25 - A solid sphere of radius R has a spherically...Ch. 25 - A solid sphere of radius R has a spherically...Ch. 25 - A very large, horizontal conducting square plate...Ch. 25 - Prob. 78PQCh. 25 - A particle with charge q = 7.20 C is surrounded by...Ch. 25 - A sphere with radius R has a charge density given...
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