A 20-cm-tall object is 40cmin front of a converging lens that has a20cm focal length.
a Use ray tracing to find the position and height of the image. To do this accurately, use a ruler or paper with a grid. Determine the image distance and image height by making measurements on your diagram.
bCalculate the image position and height. Compare with your ray-tracing answers in part a.

Short Answer

Expert verified

Part a

aThe image distance is s'=40cmand image height ish'=2.0cm.

Part b

bThe image distance is s'=40cmand image height is h'=2.0cm.

The both part agrees.

Step by step solution

01

Step: 1 Finding lateral magnification:  

From thin lens equation,

1s+1s=1f

The convex lens of focal lens is positive and concave lens is negative:the image virutal is negative and real image distance is positive.

The lateral magnification is

|M|=image heightobject height=hhM=ss

object height ish=2.0cm.

The lens is converging.

The distance lens object iss=40cm.

The focal length islocalid="1649230311637" f=20cm.

02

Step: 2 Finding image distance: (part a) 

The ray trace diagram is

From lens equation is

1s+1s=1f1s=1f1s1s=sfsfs=(40cm)×(20cm)40cm20cms=40cm.

03

Step: 3 Finding image height: (part b) 

The lateral magnification lens by

M=ssM=40cm40cmM=1.|M|=hhh=h|M|h=(2.0cm)×(1)h=2.0cm.

By comparing, the both parts are agree.

Unlock Step-by-Step Solutions & Ace Your Exams!

  • Full Textbook Solutions

    Get detailed explanations and key concepts

  • Unlimited Al creation

    Al flashcards, explanations, exams and more...

  • Ads-free access

    To over 500 millions flashcards

  • Money-back guarantee

    We refund you if you fail your exam.

Over 30 million students worldwide already upgrade their learning with Vaia!

One App. One Place for Learning.

All the tools & learning materials you need for study success - in one app.

Get started for free

Most popular questions from this chapter

Find the focal length of the glass lens in FIGUREEX34.27.

Consider an object of thickness ds (parallel to the axis) in front of a lens or mirror. The image of the object has thickness ds′. Define the longitudinal magnification as M = ds′/ds. Prove that M = -m2, where m is the lateral magnification

Shown from above in FIGURE P34.54 is one corner of a rectangular box filled with water. A laser beam starts 10cmfrom side A of the container and enters the water at position x. You can ignore the thin walls of the container.

a. If x=15cm, does the laser beam refract back into the air through side B or reflect from side B back into the water? Determine the angle of refraction or reflection.

b. Repeat part a for x=25cm.

c. Find the minimum value of x for which the laser beam passes through side B and emerges into the air.

A keratometer is an optical device used to measure the radius of curvature of the eye’s cornea—its entrance surface. This measurement is especially important when fitting contact lenses, which must match the cornea’s curvature. Most light incident on the eye is transmitted into the eye, but some light reflects from the cornea, which, due to its curvature, acts like a convex mirror. The keratometer places a small, illuminated ring of known diameter 7.5 cm in front of the eye. The optometrist, using an eyepiece, looks through the center of this ring and sees a small virtual image of the ring that appears to be behind the cornea. The optometrist uses a scale inside the eyepiece to measure the diameter of the image and calculate its magnification. Suppose the optometrist finds that the magnification for one patient is 0.049. What is the absolute value of the radius of curvature of her cornea?

A fortune teller’s “crystal ball” (actually just glass) is 10 cm in diameter. Her secret ring is placed 6.0 cm from the edge of the ball.

a. An image of the ring appears on the opposite side of the crystal ball. How far is the image from the center of the ball?

b. Draw a ray diagram showing the formation of the image.

c. The crystal ball is removed and a thin lens is placed where the center of the ball had been. If the image is still in the same position, what is the focal length of the lens?

See all solutions

Recommended explanations on Physics Textbooks

View all explanations

What do you think about this solution?

We value your feedback to improve our textbook solutions.

Study anywhere. Anytime. Across all devices.

Sign-up for free