Question 2
A 10 mm long awl pin is placed vertically in front of a concave mirror. A 5 mm long image of the awl pin is formed at 30 cm in front of the mirror. The focal length of this mirror is

(a) -30 cm
(b) -20 cm
(c) -40 cm
(d) -60 cm

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Solution

Given: Height of the object, $h_{0}$ = 10 mm
Height of the image, $h_{i}$ = 5 mm
Image distance, v = -30 cm
$m = \frac{h_{i}}{h_{0}} = - \frac{5}{10} = - \frac{v}{u}$
$- \frac{1}{2} = - \frac{(- 30)}{u}$
$u = - 60 c m$
Now applying the mirrors formula,
$\frac{1}{u} + \frac{1}{v} = \frac{1}{f}$
$\frac{1}{f} = \frac{1}{- 60} + \frac{1}{- 30}$
$\frac{1}{f} = \frac{1}{- 60} + \frac{2}{- 60}$
$\frac{1}{f} = \frac{3}{- 60}$
$\Rightarrow$ Focal length, f = -20 cm

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Image Formation by Spherical Mirrors

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Question 2 A 10 mm long awl pin is placed vertically in front of a concave mirror. A 5 mm long image of the awl pin is formed at 30 cm in front of the mirror. The focal length of this mirror is (a) -30 cm (b) -20 cm (c) -40 cm (d) -60 cm

Given: Height of the object, h0 = 10 mm Height of the image, hi = 5 mm Image distance, v = -30 cm m=hih0=−510=−vu −12=−(−30)u u=−60 cm Now applying the mirrors formula, 1u+1v=1f 1f=1−60+1−30 1f=1−60+2−60 1f=3−60 ⇒ Focal length, f = -20 cm

Question 2
A 10 mm long awl pin is placed vertically in front of a concave mirror. A 5 mm long image of the awl pin is formed at 30 cm in front of the mirror. The focal length of this mirror is

(a) -30 cm
(b) -20 cm
(c) -40 cm
(d) -60 cm