5. The focal length of a diverging lens is negative. If ƒ= -20 cm for a particular diverging lens, where will the image be formed of an object located 50 cm to the left of the lens on the optical axis? What is the magnification of the image?

Principles of Physics: A Calculus-Based Text
5th Edition
ISBN:9781133104261
Author:Raymond A. Serway, John W. Jewett
Publisher:Raymond A. Serway, John W. Jewett
Chapter26: Image Formation By Mirrors And Lenses
Section: Chapter Questions
Problem 70P
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if its mmage on the fim is to be in focus.
What is the magnification?
(b) An extension tube is added between the lens and the
camera body so that the lens can be positioned 100 mm
from film. How close can the object be now? What is the
magnification?
5. The focal length of a diverging lens is negative. If ƒ= −20 cm
for a particular diverging lens, where will the image be
formed of an object located 50 cm to the left of the lens on
the optical axis? What is the magnification of the image?
6. The equation connecting s, p, and ffor a simple lens can
be employed for spherical mirrors, too. A concave mirror
with a focal length of 8 cm forms an image of a small object
placed 10 cm in front of the mirror. Where will this image be
located?
17. If the mirror described in the previous problem is used to
form an image of the same object now located 16 cm in
front of the mirror, what would the new image position be?
Assuming that the magnification equations developed for
Transcribed Image Text:if its mmage on the fim is to be in focus. What is the magnification? (b) An extension tube is added between the lens and the camera body so that the lens can be positioned 100 mm from film. How close can the object be now? What is the magnification? 5. The focal length of a diverging lens is negative. If ƒ= −20 cm for a particular diverging lens, where will the image be formed of an object located 50 cm to the left of the lens on the optical axis? What is the magnification of the image? 6. The equation connecting s, p, and ffor a simple lens can be employed for spherical mirrors, too. A concave mirror with a focal length of 8 cm forms an image of a small object placed 10 cm in front of the mirror. Where will this image be located? 17. If the mirror described in the previous problem is used to form an image of the same object now located 16 cm in front of the mirror, what would the new image position be? Assuming that the magnification equations developed for
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