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58 through 67 61 59 Lenses with given radii. An object Ostands in front of a thin lens, on the central axis. For this situation, each problem in Table 34-7 gives object distance p, index of refraction n of the lens, radius r1of the nearer lens surface, and radius r2of the farther lens surface. (All distances are in centimeters.) Find (a) the image distance iand (b) the lateral magnification m of the object, including signs. Also, determine whether the image is (c) real (R)or virtual (V), (d) inverted (I)from the object Oor non-inverted (NI), and (e) on the same side of the lens as object Oor on the opposite side.

Short Answer

Expert verified
  1. The image distance is -7.5cm
  2. The lateral magnification of the object is +0.75
  3. The image is virtual role="math" localid="1663065301785" V.
  4. The image is not inverted Nlfrom the object.
  5. The image is on the same side of the object.

Step by step solution

01

The data given

  1. The object distance, P=+10m
  2. The index of refraction of the lens, n=150
  3. The radius of the nearer lens surface, r1=-30mm
  4. The radius of the farther lens surface, r2=+30mm
02

Understanding the concept of properties of the lens

Here, we need to use the concept of image formation by the thin lens. We can use the equations 34.9 and 34.10 together to solve for the image distance. The magnification of the lens can be calculated using equation 34.7. By using the values of image distance and magnification, we can determine whether the image is real or virtual, whether it is inverted or not-inverted, and whether it is on the same side of the object or the opposite side.

Formula:

The lens formula for refraction, 1f=n-11r1-1r2 (i)

The lens formula, 1f=1P+1i (ii)

The magnification formula of the lens, m=-iP(iii)

03

(a) Calculation of the object's distance

Using the given data in equation (i), the expression of the focal length of the lens in air is given as follows:

f=r1r2n-1r2-r1=-30cm+30cm1.50-1+30cm--30cm=-30cm

The given lens is a diverging lens because focal length is negative.

For an object in front of the lens, the object distance and image distance are related to the lensโ€™ focal length. Thus, the image distance can be given using the data in equation (ii) as follows:

1i=1f-1Pi=PfP-f=+10cm-30cm+10cm--30cm=-7.5cm

Hence, the value of the image distance is -7.5cm

04

(b) Calculation of the lateral magnification of the object

The lateral magnification is the ratio of the object distance to the image distance. It is given using the data in equation (iii) as follows:

m=--7.5cm+10cm=+0.75

Hence, the value of the lateral magnification is +0.75

05

(c) Calculation of the behavior of the image

If the object is inside the focal point, then it is a virtual image.The image distance is also negative.

Hence, the image is virtual

06

(d) Calculation if the image is inverted or not

The value of magnification is positive.

Hence, the image is not inverted .

07

(e) Calculation of the position of the image

The image distance is negative.

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

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Most popular questions from this chapter

58 through 67 61 59 Lenses with given radii. Object stands in front of a thin lens, on the central axis. For this situation, each problem in Table 34-7 gives object distance , index of refraction n of the lens, radius of the nearer lens surface, and radius of the farther lens surface. (All distances are in centimetres.) Find (a) the image distance and (b) the lateral magnification m of the object, including signs. Also, determine whether the image is (c) real (R) or virtual , (d) inverted from object or non-inverted (NI), and (e) on the same side of the lens as object or on the opposite side

9, 11, 13 Spherical mirrors. Object O stands on the central axis of a spherical mirror. For this situation, each problem in Table 34-3 gives object distance ps(centimeters), the type of mirror, and then the distance (centimeters, without proper sign) between the focal point and the mirror. Find (a) the radius of curvature r(including sign), (b) the image distance localid="1662986561416" i, and (c) the lateral magnification m. Also, determine whether the image is (d) real (R) or virtual (V), (e) inverted (I) from object O or non-inverted (NI), and (f) on the same side of the mirror as O or on the opposite side.

A peanut is placed 40cmin front of a two-lens system: lens 1 (nearer the peanut) has focal length f1 =20cm, lens 2 has f2=-15cm and the lens separation is d=10cm. For the image produced by lens 2, what are (a) the image distance i2(including sign), (b) the image orientation (inverted relative to the peanut or not inverted), and (c) the image type (real or virtual)? (d) What is the net lateral magnification?

Figure 34-50a is an overhead view of two vertical plane mirrors with an object O placed between them. If you look into the mirrors, you see multiple images of O. You can find them by drawing the reflection in each mirror of the angular region between the mirrors, as is done in Fig. 34-50b for the left-hand mirror. Then draw the reflection of the reflection. Continue this on the left and on the right until the reflections meet or overlap at the rear of the mirrors. Then you can count the number of images of O. How many images of O would you see if ฮธis (a) 90ยฐ, (b) 45ยฐ, and (c) 60ยฐ? If ฮธ=120ยฐ, determine the (d) smallest and (e) largest number of images that can be seen, depending on your perspective and the location of O. (f) In each situation, draw the image locations and orientations as in Fig. 34-50b.

17 through 29 22 23, 29 More mirrors. Object Ostands on the central axis of a spherical or plane mirror. For this situation, each problem in Table 34-4 refers to (a) the type of mirror, (b) the focal distance f, (c) the radius of curvature r, (d) the object distance p, (e) the image distance i, and (f) the lateral magnification m. (All distances are in centimeters.) It also refers to whether (g) the image is real localid="1662999140986" (R)or virtual (V), (h) inverted (I)or non-inverted from (NI)from O, and (i) on the same side of the mirror as the object Oor the opposite side. Fill in the missing information. Where only a sign is missing, answer with the sign.

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