The image of an illuminated square is obtained on a screen with the help of a converging lens. The distance of the square from the lens is 40 cm. The area of the image is 9 times that of the square. The focal length of the lens is :

Question

The image of an illuminated square is obtained on a screen with the help of a converging lens. The distance of the square from the lens is 40 cm. The area of the image is 9 times that of the square. The focal length of the lens is : (A) 36 cm (B) 27 cm (C) 60 cm (D) 30 cm

Tardigrade Admin · Accepted Answer

If side of object square =ℓ and side of image square =ℓ' From question, (ℓ'2/ℓ)=9 or (ℓ'/ℓ )=3 i.e., magnification m = 3 u=- 40 cm v= 3 × 40= 120 cm f=? From formula (1/v)-(1/u)=(1/f) (1/120)-(1/-40)=(1/f) or, (1/f)=(1/120)+(1/40)=(1+3/120) ∴ f =30 cm

Q. The image of an illuminated square is obtained on a screen with the help of a converging lens. The distance of the square from the lens is $40 c m$ . The area of the image is $9$ times that of the square. The focal length of the lens is :

$36 c m$

$27 c m$

$60 c m$

$30 c m$

Q. The image of an illuminated square is obtained on a screen with the help of a converging lens. The distance of the square from the lens is 40cm. The area of the image is 9 times that of the square. The focal length of the lens is :

36cm

27cm

60cm

30cm

If side of object square =ℓ and side of image square =ℓ′ From question, ℓℓ′2​=9 or ℓℓ′​=3 i.e., magnification m=3 u=−40cm v=3×40=120cm f=? From formula v1​−u1​=f1​ 1201​−−401​=f1​ or, f1​=1201​+401​=1201+3​∴f=30cm

Q. The image of an illuminated square is obtained on a screen with the help of a converging lens. The distance of the square from the lens is $40 c m$ . The area of the image is $9$ times that of the square. The focal length of the lens is :

$36 c m$

$27 c m$

$60 c m$

$30 c m$