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69 through 79 76, 78 75, 77 More lenses. Object ostands on the central axis of a thin symmetric lens. For this situation, each problem in Table 34-8 refers to (a) the lens type, converging C or diverging D , (b) the focal distance f , (c) the object distance p, (d) the image distance i, and (e) the lateral magnification m. (All distances are in centimeters.) It also refers to whether (f) the image is real Ror virtual V, (g) inverted I or non-inverted (NI) from O, and (h) on the same side of the lens as Oor on the opposite side. Fill in the missing information, including the value of m when only an inequality is given, where only a sign is missing, answer with the sign.

Short Answer

Expert verified
  1. The lens type is converging.
  2. The focal distance is +10cm.
  3. The object distance is +20 cm.
  4. The image distance is +20cm.
  5. The lateral magnification is -1.0.
  6. The image is real (R).
  7. The image is inverted (I).

8. The image is on the opposite side of the lens as the object

Step by step solution

01

The given data

  1. The lens is a converging type of lens.
  2. The object distance, p=+20cm
  3. The focal length of the lens, f=10cm
  4. The lens is converging.
02

Understanding the concept of properties of the lens

An object, when placed in front of a lens, produces an image. It could be real or virtual, magnified or diminished, inverted or not inverted. The type of image is decided by the type of lens used, the focal length of the lens, and the distance of the object from the lens.

Formulae:

The lens formula, 1f=1p+1i (i)

The magnification formula of the lens, m=-ip (ii)

03

a) Calculation of the lens type

From the given data in table, the lens is converging.

04

b) Calculation of the focal distance

From the data in table, the focal distance is +10cm .

05

c) Calculation of the object distance

The object distance is +20 cm as given in the problem.

06

d) Calculation of the image distance

Using the given data in equation (i), the image distance can be given as follows:

1i=110-120=120i=+20cm

Hence, the image distance is +20cmand positive.

07

e) Calculation of the lateral magnification

Now, using the given object distance and the above image distance, we can get the lateral magnification of the lens as follows:

m=-2020=-1.0cm

Hence, the lateral magnification is -1.0cm.

08

f) Calculation of the type of image

The image is real because the image distance is positive.

Hence, the image is real (R).

09

g) Calculation if the image is inverted or not

The image is inverted as the lens is converging.

Hence, the image is inverted (I).

10

h) Calculation of the position of the object

The image is on the opposite of the lens as O since the image distance is positive.

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

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Most popular questions from this chapter

Figure 34-47a shows the basic structure of the human eye. Light refracts into the eye through the cornea and is then further redirected by a lens whose shape (and thus ability to focus the light) is controlled by muscles. We can treat the cornea and eye lens as a single effective thin lens (Fig. 34-47b). A 鈥渘ormal鈥 eye can focus parallel light rays from a distant object O to a point on the retina at the back of the eye, where the processing of the visual information begins. As an object is brought close to the eye, however, the muscles must change the shape of the lens so that rays form an inverted real image on the retina (Fig. 34-47c). (a) Suppose that for the parallel rays of Figs. 34-47a and b, the focal length fof the effective thin lens of the eye is 2.50 cm. For an object at distance p = 40 cm, what focal length f of the effective lens is required for the object to be seen clearly? (b) Must the eye muscles increase or decrease the radii of curvature of the eye lens to give focal length f?

a real inverted imageof an object is formed by a particular lens (not shown); the object鈥搃mage 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?

The formula 1p+1i=1f is called the Gaussian form of the thin-lens formula. Another form of this formula, the Newtonian form, is obtained by considering the distance xfrom the object to the first focal point and the distancex' from the second focal point to the image. Show thatxx'=f2 is the Newtonian form of the thin-lens formula

A moth at about eye level is10cmin front of a plane mirror; a man is behind the moth,30cmfrom the mirror. What is the distance between man鈥檚 eyes and the apparent position of the moth鈥檚 image in the mirror?

When a T. rex pursues a jeep in the movie Jurassic Park, we see a reflected image of the T. rex via a side-view mirror, on which is printed the (then darkly humorous) warning: 鈥淥bjects in mirror are closer than they appear.鈥 Is the mirror flat, convex, or concave?

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