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
Question
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Chapter 37, Problem 55PQ

(a)

To determine

The location of the image.

(a)

Expert Solution
Check Mark

Answer to Problem 55PQ

The location of the image is 3.27cm.

Explanation of Solution

In case of convex mirror, no matter where the object is placed. The image is always erect and virtual.

Write the expression for focal length.

    f=R2                                                                                                                   (I)

Here, R is radius of mirror.

Write the expression for mirror equation.

    1f=1d0+1di

Here, f is the focal length, d0 is object distance and di is image distance.

Solve the above equation for di.

    1f=1d0+1di1di=1f1d0=d0ffd0

Simplify the above equation.

    di=fd0d0f                                                                                                             (II)

Conclusion:

Substitute 8cm for R in equation (I) to find f.

    f=8cm2=4cm

Substitute, 4cm for f and 18cm for do in equation (II) to find di.

    di=(4cm)×(18cm)18cm(4cm)=3.27cm

Therefore, the location of the image is 3.27cm.

(b)

To determine

The magnification of the image.

(b)

Expert Solution
Check Mark

Answer to Problem 55PQ

The magnification of the image is 0.182.

Explanation of Solution

Write the expression for magnification in case of mirror.

  M=did0

Conclusion:

Substitute, 3.27cm for di and 18cm for d0 in the above equation to find M.

    M=(3.27cm)18cm=0.182

Therefore, the magnification of the image is 0.182.

(c)

To determine

The image is inverted or upright.

(c)

Expert Solution
Check Mark

Answer to Problem 55PQ

The image is upright.

Explanation of Solution

The image is upright because the magnification value is positive as calculated in the part (b). And as the image distance is negative as calculated in part (a), it implies the image is virtual.

Hence, the image is virtual and upright.

Therefore, the image is upright.

(d)

To determine

The height of the image.

(d)

Expert Solution
Check Mark

Answer to Problem 55PQ

The height of the image is 0.636cm.

Explanation of Solution

Write the expression for magnification in case of mirror.

  M=did0=hih0

Here, hi is height of image, ho is the height of the object, di is the distance of the image and do is the distance of the object.

Solve the above equation for hi.

    did0=hih0hi=h0(did0)

Conclusion:

Substitute 3.5cm for h0, 3.27cm for di and 18cm for d0 in the above equation to find hi.

    hi=(3.5cm)((3.27cm)18cm)=0.636cm

Therefore, the height of the image is 0.636cm.

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Chapter 37 Solutions

Physics for Scientists and Engineers: Foundations and Connections

Ch. 37 - Prob. 4PQCh. 37 - Prob. 5PQCh. 37 - Prob. 6PQCh. 37 - Prob. 7PQCh. 37 - Prob. 8PQCh. 37 - Prob. 9PQCh. 37 - Prob. 10PQCh. 37 - Prob. 11PQCh. 37 - Prob. 12PQCh. 37 - Prob. 13PQCh. 37 - Prob. 14PQCh. 37 - Light rays strike a plane mirror at an angle of...Ch. 37 - Prob. 16PQCh. 37 - Prob. 17PQCh. 37 - Prob. 18PQCh. 37 - Prob. 19PQCh. 37 - Prob. 20PQCh. 37 - Prob. 21PQCh. 37 - Prob. 22PQCh. 37 - Prob. 23PQCh. 37 - Prob. 24PQCh. 37 - Prob. 25PQCh. 37 - Prob. 26PQCh. 37 - Prob. 27PQCh. 37 - Prob. 28PQCh. 37 - A convex mirror with a radius of curvature of 25.0...Ch. 37 - The magnitude of the radius of curvature of a...Ch. 37 - Prob. 31PQCh. 37 - The image formed by a convex spherical mirror with...Ch. 37 - An object is placed 25.0 cm from the surface of a...Ch. 37 - Prob. 34PQCh. 37 - Prob. 35PQCh. 37 - Prob. 36PQCh. 37 - Prob. 37PQCh. 37 - Prob. 38PQCh. 37 - Prob. 39PQCh. 37 - Prob. 40PQCh. 37 - Prob. 41PQCh. 37 - Prob. 42PQCh. 37 - Prob. 43PQCh. 37 - Prob. 44PQCh. 37 - Prob. 45PQCh. 37 - Prob. 46PQCh. 37 - Prob. 47PQCh. 37 - Prob. 48PQCh. 37 - Prob. 49PQCh. 37 - Prob. 50PQCh. 37 - Prob. 51PQCh. 37 - Prob. 52PQCh. 37 - Prob. 53PQCh. 37 - Prob. 54PQCh. 37 - Prob. 55PQCh. 37 - Prob. 56PQCh. 37 - You see the image of a sign through a camera...Ch. 37 - Prob. 58PQCh. 37 - Prob. 59PQCh. 37 - Prob. 60PQCh. 37 - An object is placed midway between two concave...Ch. 37 - Prob. 62PQCh. 37 - Prob. 63PQCh. 37 - Prob. 64PQCh. 37 - Prob. 65PQCh. 37 - Prob. 66PQCh. 37 - Observe your reflection in the back of a spoon....Ch. 37 - Prob. 68PQCh. 37 - A small convex mirror and a large concave mirror...Ch. 37 - Prob. 70PQCh. 37 - Prob. 71PQCh. 37 - Prob. 72PQCh. 37 - Prob. 73PQ
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