College Physics
11th Edition
ISBN: 9781305952300
Author: Raymond A. Serway, Chris Vuille
Publisher: Cengage Learning
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- A transparent photographic slide is placed in front of a converging lens with a focal length of 2.53 cm. An image of the slide is formed 12.0 cm from the slide. (a) How far is the lens from the slide if the image is real? (Enter your answers from smallest to largest starting with the first answer blank. Enter NONE in any remaining answer blanks.) cm cm (b) How far is the lens from the slide if the image is virtual? (Enter your answers from smallest to largest starting with the first answer blank. Enter NONE in any remaining answer blanks.) cm cm Need Help? Master Itarrow_forward1) What is f, the focal length of the mirror? If the mirror is concave f is positive. If the mirror is convex, f is negative. 2) What is y₂, the y-coordinate of the image of the tip of the arrow? 3) The object arrow is now moved such that image distance doubles, i.e., Ximage, new = -177 cm. What is Yimage, new, the new y-coordinate of the image of the tip of the arrow? cm Submit 000 4) The object arrow is now moved to x = x1,new = -29 cm. What is arrow? (a) cm Submit (b) 5) Which of the rays in the diagram is not reflected as shown? (c) Submit cm Submit cm Submit Y2, new' (a)+ (b) (c) the new y-coordinate of the image of the + +arrow_forwardA spherical mirror is polished on both sides. When the concave side is used as a mirror, the magnification is +2.6. What is the magnification when the convex side is used as a mirror, the object remaining the same distance from the mirror? If the object is inverted, then enter a negative number. Otherwise, enter a positive number. Number i Units >arrow_forward
- Spherical mirrors. Object O stands on the central axis of a spherical mirror. For this situation object distance is p, = +17 cm, the type of mirror is concave, and then the distance between the focal point and the mirror is 12 cm (without proper sign). Find (a) the radius of curvature r (including sign), (b) the image distance i, and (c) the lateral magnification m. Also, determine whether the image is (d) real or virtual, (e) inverted from object O or noninverted, and (f) on the same side of the mirror as O or on the opposite side. (a) Number i Units (b) Number i Units (c) Number i Units (d) (e) (f) > >arrow_forwardSpherical mirrors. Object O stands on the central axis of a spherical mirror. For this situation object distance is p5 = +24 centimeters, the type of mirror is convex, and then the distance between the focal point and the mirror is 44 cm (without proper sign). Find (a) the radius of curvaturer (including sign), (b) the image distance i, and (c) the lateral magnification m. Also, determine whether the image is (d) real or virtual, (e) inverted from object O or noninverted, and (f) on the same side of the mirror as O or on the opposite side. (a) Number i (b) Number i (c) Number (d) (e) (f) MI Units Units Unitsarrow_forwardSpherical mirrors. Object O stands on the central axis of a spherical mirror. For this situation object distance is ps = +20 cm, the type of mirror is concave, and then the distance between the focal point and the mirror is 13 cm (without proper sign). Find (a) the radius of curvature r (including sign), (b) the image distance i, and (c) the lateral magnification m. Also, determine whether the image is (d) real or virtual, (e) inverted from object O or noninverted, and (f) on the same side of the mirror as O or on the opposite side.arrow_forward
- A spherical, concave shaving mirror has a radius of curvature of 0.476 m. What is the magnification of a person's face when it is 0.155 m from the vertex of the mirror (answer sign and magnitude)?arrow_forwardSpherical refracting surfaces. When an object is placed 9.3 cm in front of a spherical refracting surface the image distance is -15 cm. The index of refraction of the refracting material is 2.7 and it is embedded in transparent material with index of refraction 2.0. Find (a) the radius of curvature r of the surface (including the sign) and determine whether the image is (b) real or virtual and (c) on the same side of the surface as object O or on the opposite side. (a) (b) (c) n1 n2 pr i R/V Side 2.0 2.7 +9.3 -15 (a) Number Units (b) (c) >arrow_forwardAsap plzzzzarrow_forward
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