Ray Optics And Optical Instruments MCQs With Answers – Part 2 (Class 12 Physics)
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Ray Optics and Optical Instruments MCQs with Answers – Part 2 (Class 12 Physics)

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101. In mirror problems, the magnification relation \(m=-\frac{v}{u}\) is useful because it gives
ⓐ. relative image size and orientation
ⓑ. only the focal length of the mirror
ⓒ. only the radius of curvature
ⓓ. only the angle of reflection
102. A concave mirror has focal length \(-15\,cm\). An object is placed \(30\,cm\) in front of it. The image position is
ⓐ. \(+30\,cm\)
ⓑ. \(-30\,cm\)
ⓒ. \(-10\,cm\)
ⓓ. \(+10\,cm\)
103. In the situation \(f=-15\,cm\), \(u=-30\,cm\), and \(v=-30\,cm\) for a concave mirror, the magnification is
ⓐ. \(-1\)
ⓑ. \(+1\)
ⓒ. \(+2\)
ⓓ. \(-2\)
104. A concave mirror has \(f=-20\,cm\). A \(3\,cm\) tall object is placed \(30\,cm\) in front of it. The image height is
ⓐ. \(+6\,cm\)
ⓑ. \(-2\,cm\)
ⓒ. \(+2\,cm\)
ⓓ. \(-6\,cm\)
105. A convex mirror of focal length \(+15\,cm\) forms an image of an object placed \(30\,cm\) in front of it. If the object height is \(6\,cm\), the image height is
ⓐ. \(+2\,cm\)
ⓑ. \(-2\,cm\)
ⓒ. \(+12\,cm\)
ⓓ. \(-12\,cm\)
106. A mirror gives \(m=-3\) for a real object. This means the image is
ⓐ. erect and three times as tall as the object
ⓑ. inverted and three times as tall as the object
ⓒ. erect and one-third as tall as the object
ⓓ. inverted and one-third as tall as the object
107. A mirror produces a virtual erect image of height \(4\,cm\) from an object of height \(2\,cm\). The magnification is
ⓐ. \(-2\)
ⓑ. \(+\frac{1}{2}\)
ⓒ. \(-\frac{1}{2}\)
ⓓ. \(+2\)
108. A graph is plotted for a spherical mirror with \(y=\frac{1}{v}\) on the vertical axis and \(x=\frac{1}{u}\) on the horizontal axis. From the mirror formula, the graph should have
ⓐ. slope \(+1\) and vertical intercept \(f\)
ⓑ. slope \(0\) and vertical intercept \(u\)
ⓒ. slope \(\frac{1}{f}\) and vertical intercept \(-1\)
ⓓ. slope \(-1\) and vertical intercept \(\frac{1}{f}\)
109. A dentist uses a concave mirror of focal length \(15\,cm\) to see an enlarged erect image of a tooth. If the tooth is \(10\,cm\) in front of the mirror, the image distance and magnification are
ⓐ. \(v=-30\,cm,\ m=-3\)
ⓑ. \(v=+30\,cm,\ m=+3\)
ⓒ. \(v=+6\,cm,\ m=+0.6\)
ⓓ. \(v=-6\,cm,\ m=-0.6\)
110. A student solves a concave-mirror problem and obtains \(v=+24\,cm\) for a real object placed in front of the mirror. The physical interpretation is that the image is
ⓐ. behind the mirror and virtual
ⓑ. in front of the mirror and real
ⓒ. at the pole and real
ⓓ. below the principal axis only
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