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80 through 87 80, 87 SSM WWW 83 Two-lens systems. In Fig. 34-45, stick figure O (the object) stands on the common central axis of two thin, symmetric lenses, which are mounted in the boxed regions. Lens 1 is mounted within the boxed region closer to O, which is at object distance p1. Lens 2 is mounted within the farther boxed region, at distance d. Each problem in Table 34-9 refers to a different combination of lenses and different values for distances, which are given in centimeters. The type of lens is indicated by C for converging and D for diverging; the number after C or D is the distance between a lens and either of its focal points (the proper sign of the focal distance is not indicated). Find (a) the image distance i2for the image produced by lens 2 (the final image produced by the system) and (b) the overall lateral magnification Mfor the system, including signs. Also, determine whether the final image is (c) real (R)or virtual (V), (d) inverted(I) from object O or non- inverted (NI), and (e) on the same side of lens 2 as object O or on the opposite side.

Short Answer

Expert verified

a. Image distance for the image produced by lens 2,i2=-23cm

b. Overall lateral magnification, including sign,M=-13

The final image is,

c. Virtual (V)

d. Inverted (I)

e. On the same side as the object.

Step by step solution

01

Given data

  • The object stands on the common central axis of two thin symmetric lenses.
  • Distance between object and lens 1,p1=+15cm
  • Distance between lenses 1 and 2,d=67cm
  • Lens 1 is converging, focal lengthf1=12cm
  • Lens 2 is converging, focal lengthf1=12cm
02

Determining the concept

Using the relation between focal length, image distance, and object distance find the image distance i2. Then using the formula for overall magnification find its value.

From the solution of part a and b answer part c, d and e.

Formulae are as follows:

Formula for focal length,1f=1p+1i

Overall magnification,M=m1m2

Magnification,m=-ip

Here, mis the magnification, p is the pole, fis the focal length, and iis the image distance.

03

(a) Determining Image distance for the image produced by lens 2, i2

For lens1 focal length f1, object distance p1

Using the expression for focal length,

1f1=1p1+1i11i1=1f1-1p11i1=p1-f1f1p1

∴i1=f1p1p1-f1..................(1)

i1=12×1515-12=+60cm

This serves as an object for lens 2,

p2=d-i1=67-60=7cm

It is given thatf2=10cm

Modifying equation (1) for lens 2,

i2=f2p2p2-f2

i2=10×77-10

i2=-23cm

Therefore, the image produced by lens 2 is at -23 cm.

04

(b) Determine the overall lateral magnification, including sign, M

To find overall magnification use the formula,

M=m1m2

Magnification m=-ip

∴M=-i1p1×-i2p2

M=6015×--237

M=-13

Therefore, the overall magnification for the given lens system is -13.

05

(c) Determining whether the final image is real (R) or virtual (V)

Since the lens 1 and 2 are converging, the object for lens 2 is inside the focal point. The final image distance is negative. Hence the image formed by this lens system is virtual.

06

(d) Determine whether the final image is inverted (I) or non-inverted (NI)

Overall magnification for this lens system is negative which shows that the image and the object have the opposite orientation.

Hence the image is inverted.

07

(e) Determine whether the final image is on the same side of lens 2 as object O or on the opposite side.

The final image distance is negative which shows that it is on the negative side of lens 2 that is on the same side of the object.

Hence, the image is on the same side of the object.

The focal length and overall magnification of the two-lens system can be found using corresponding formulae. The nature of the image can be predicted from the characteristics of the image formed due to the given two-lens system.

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Most popular questions from this chapter

In Fig. 34-26, stick figure O stands in front of a thin, symmetric lens that is mounted within the boxed region; the central axis through the lens is shown. The four stick figuresI1andI4suggest general locations and orientations for the images that might be produced by the lens. (The figures are only sketched in; neither their height nor their distance from the lens is drawn to scale.) (a) Which of the stick figures could not possibly represent images? Of the possible images, (b) which would be due to a converging lens, (c) which would be due to a diverging lens, (d) which would be virtual, and (e) which would involve negative magnification?

Someone with a near point Pn of 25 cm views a thimble through a simple magnifying lens of the focal length 10 cm by placing the lens near his eye. What is the angular magnification of the thimble if it is positioned so that its image appears at (a) Pn and (b) infinity?

a real inverted imageof an object is formed by a particular lens (not shown); the object–image separation is, measured along the central axis of the lens. The image is just half the size of the object. (a) What kind of lens must be used to produce this image? (b) How far from the object must the lens be placed? (c) What is the focal length of the lens?

In Fig. 34-26, stick figure Ostands in front of a spherical mirrorthat is mounted within the boxed region;the central axis through themirror is shown. The four stick figures I1to I4suggest general locationsand orientations for the images that might be produced by themirror. (The figures are onlysketched in; neither their heightsnor their distances from the mirror are drawn to scale.) (a) Whichof the stick figures could not possibly represent images? Of thepossible images, (b) which would be due to a concave mirror, (c)which would be due to a convex mirror, (d) which would be virtual,and (e) which would involve negative magnification?

In Fig. 34-54, a fish watcher at point P watches a fish through a glass wall of a fish tank. The watcher is level with the fish; the index of refraction of the glass is 8/5, and that of the water is 4/3. The distances are d1=8.0cm,d2=3.0cm,d3=6.8cm. (a) To the fish, how far away does the watcher appear to be? (Hint: The watcher is the object. Light from that object passes through the walls outside surface, which acts as a refracting surface. Find the image produced by that surface. Then treat that image as an object whose light passes through the walls inside surface, which acts as another refracting surface.) (b) To the watcher, how far away does the fish appear to be?

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