A square card of side length 1 mm is being seen through a magnifying lens of focal length 10 cm . The card is placed at a distance of 9 cm from the lens. The apparent area of the card through the lens is

Question

A square card of side length 1 mm is being seen through a magnifying lens of focal length 10 cm . The card is placed at a distance of 9 cm from the lens. The apparent area of the card through the lens is (A)  1 cm2  (B)  0.8 cm2  (C)  0.27 cm2  (D)  0.60 cm2

Tardigrade Admin · Accepted Answer

Focal length of converging lens f=+10 cm u=-9 cm From lens formula (1/f)=(1/v)-(1/u) or (1/v)=(1/f)+(1/u)=(1/10)+(1/(-9)) (1/v)=(1/10)-(1/9) or V=-90 cm Magnification, m=(v/u)=(-90/-9)=10 ∴ Apparent area of card through lens =10×10×1×1=100 mm2 =1 cm2

Q. A square card of side length $1 mm$ is being seen through a magnifying lens of focal length $10 c m$ . The card is placed at a distance of $9 c m$ from the lens. The apparent area of the card through the lens is

$1 c m^{2}$

$0.8 c m^{2}$

$0.27 c m^{2}$

$0.60 c m^{2}$

Q. A square card of side length 1mm is being seen through a magnifying lens of focal length 10cm . The card is placed at a distance of 9cm from the lens. The apparent area of the card through the lens is

1cm2

0.8cm2

0.27cm2

0.60cm2

Focal length of converging lens f=+10cm u=−9cm From lens formula f1​=v1​−u1​ or v1​=f1​+u1​=101​+(−9)1​ v1​=101​−91​ or V=−90cm Magnification, m=uv​=−9−90​=10 ∴ Apparent area of card through lens =10×10×1×1=100mm2 =1cm2

Q. A square card of side length $1 mm$ is being seen through a magnifying lens of focal length $10 c m$ . The card is placed at a distance of $9 c m$ from the lens. The apparent area of the card through the lens is

$1 c m^{2}$

$0.8 c m^{2}$

$0.27 c m^{2}$

$0.60 c m^{2}$