Focal Length of a Zoom Lens. Figure P34.101 shows a simple version of a zoom lens. The converging lens has focal length f 1 and the diverging lens has focal length f 2 = −| f 2 |. The two lenses are separated by a variable distance d that is always less than f 1 Also, the magnitude of the focal length of the diverging parallel rays of radius r 0 entering the converging lens, (a) Show that the radius of the ray bundle decreases to r ′ 0 = r 0 ( f 1 − d ) / f 1 at the point that it enters the diverging lens. (b) Show that the final image I′ is formed a distance s ′ 2 = | f 2 | ( f 1 − d ) / ( | f 2 | − f 1 + d ) to the right of the diverging lens. (c) If the rays that emerge from the diverging lens and reach the final image point are extended backward to the left of the diverging lens, they will eventually expand to the original radius r 0 at some point Q . The distance from the final image I ′ to the point Q is the effective focal length f of the lens combination; if the combination were replaced by a single lens of focal length f placed at Q , parallel rays would still be brought to a focus at I ′. Show that the effective focal length is given by f = f 1 | f 2 |/(| f 2 | − f 1 + d ). (d) If f 1 = 12.0cm, f 2 = − 18.0 cm, and the separation d is adjustable between 0 and 4.0 cm, find the maximum and minimum focal lengths of the combination. What value of d gives f = 30.0 cm? Figure P34.101
Focal Length of a Zoom Lens. Figure P34.101 shows a simple version of a zoom lens. The converging lens has focal length f 1 and the diverging lens has focal length f 2 = −| f 2 |. The two lenses are separated by a variable distance d that is always less than f 1 Also, the magnitude of the focal length of the diverging parallel rays of radius r 0 entering the converging lens, (a) Show that the radius of the ray bundle decreases to r ′ 0 = r 0 ( f 1 − d ) / f 1 at the point that it enters the diverging lens. (b) Show that the final image I′ is formed a distance s ′ 2 = | f 2 | ( f 1 − d ) / ( | f 2 | − f 1 + d ) to the right of the diverging lens. (c) If the rays that emerge from the diverging lens and reach the final image point are extended backward to the left of the diverging lens, they will eventually expand to the original radius r 0 at some point Q . The distance from the final image I ′ to the point Q is the effective focal length f of the lens combination; if the combination were replaced by a single lens of focal length f placed at Q , parallel rays would still be brought to a focus at I ′. Show that the effective focal length is given by f = f 1 | f 2 |/(| f 2 | − f 1 + d ). (d) If f 1 = 12.0cm, f 2 = − 18.0 cm, and the separation d is adjustable between 0 and 4.0 cm, find the maximum and minimum focal lengths of the combination. What value of d gives f = 30.0 cm? Figure P34.101
Focal Length of a Zoom Lens. Figure P34.101 shows a simple version of a zoom lens. The converging lens has focal length f1 and the diverging lens has focal length f2 = −|f2|. The two lenses are separated by a variable distance d that is always less than f1 Also, the magnitude of the focal length of the diverging parallel rays of radius r0 entering the converging lens, (a) Show that the radius of the ray bundle decreases to
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at the point that it enters the diverging lens. (b) Show that the final image I′ is formed a distance
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to the right of the diverging lens. (c) If the rays that emerge from the diverging lens and reach the final image point are extended backward to the left of the diverging lens, they will eventually expand to the original radius r0 at some point Q. The distance from the final image I′ to the point Q is the effective focal length f of the lens combination; if the combination were replaced by a single lens of focal length f placed at Q, parallel rays would still be brought to a focus at I′. Show that the effective focal length is given by f = f1|f2|/(|f2| − f1 + d). (d) If f1 = 12.0cm, f2 = − 18.0 cm, and the separation d is adjustable between 0 and 4.0 cm, find the maximum and minimum focal lengths of the combination. What value of d gives f = 30.0 cm?
You hold a spherical salad bowl 85 cm in front of your face with the bottom of the bowl facing you. The salad bowl is made of polished metal with a 40 cm radius of curvature. Where is the image of your 2.0 cm tall nose located? What is image's size, orientation, and nature. I keep getting the answer -26.2, but it keeps saying it is wrong. I just want to know what i'm doing wrong.
A converging lens with a focal length of 6.70 cm forms an image of a 4.60 mm tall real object that is to the left of the lens. The image is 1.50 cm tall and erect. Where are the object and image located? Is the image real or virtual? Please show all steps
Chapter 34 Solutions
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