MCQMediumJEE 2023Reflection & Spherical Mirrors

JEE Physics 2023 Question with Solution

A thin cylindrical rod of length 10cm10 \, \text{cm} is placed horizontally on the principle axis of a concave mirror of focal length 20cm20 \, \text{cm}. The rod is placed in a such a way that mid point of the rod is at 40cm40 \, \text{cm} from the pole of mirror. The length of the image formed by the mirror will be x3\frac{x}{3} cm. The value of xx is _____.

A thin rod AB of length 10 cm lies horizontally on the principal axis, with its midpoint 40 cm from a concave mirror on the right.Diagram showing rod AB of length 10 cm on the principal axis of a concave mirror, with positive direction marked rightward and 40 cm shown from midpoint to mirror pole.
  • A

    3030

  • B

    3232

  • C

    3434

  • D

    3636

Answer

Correct answer:B

Step-by-step solution

Standard Method

Given: A thin rod of length 10cm10 \, \text{cm} lies along the principal axis of a concave mirror. Its midpoint is at 40cm40 \, \text{cm} from the pole, and the focal length is f=20cmf=-20 \, \text{cm}.

Find: The value of xx if the image length is x3cm\frac{x}{3} \, \text{cm}.

Solution diagram showing rod AB of length 10 cm on the principal axis of a concave mirror, with left end A at 45 cm and right end B at 35 cm from the pole.

The ends of the rod are at distances 45cm45 \, \text{cm} and 35cm35 \, \text{cm} from the pole.

So,

UA=45cm,UB=35cmU_A=-45 \, \text{cm}, \qquad U_B=-35 \, \text{cm}

Using the mirror formula in the form used in the solution,

V=ufufV=\frac{uf}{u-f}

For point AA,

VA=(45)(20)45(20)=90025=36cmV_A=\frac{(-45)(-20)}{-45-(-20)}=\frac{900}{-25}=-36 \, \text{cm}

For point BB,

VB=(35)(20)35(20)=70015=1403cmV_B=\frac{(-35)(-20)}{-35-(-20)}=\frac{700}{-15}=-\frac{140}{3} \, \text{cm}

Hence, the image length is

VAVB=36(1403)=108+1403=323cmV_A-V_B=-36-\left(-\frac{140}{3}\right)=\frac{-108+140}{3}=\frac{32}{3} \, \text{cm}

But image length is given as x3cm\frac{x}{3} \, \text{cm}. Therefore,

x3=323\frac{x}{3}=\frac{32}{3}

So, x=32x=32.

Therefore, the correct option is B.

Common mistakes

  • Taking the whole rod distance as 40cm40 \, \text{cm} for both ends is wrong because 40cm40 \, \text{cm} is the distance of the midpoint, not of endpoints. Use 45cm45 \, \text{cm} and 35cm35 \, \text{cm} for the two ends.

  • Using incorrect sign convention for a concave mirror is wrong because object and image distances on the left side are negative in the Cartesian convention used here. Take f=20cmf=-20 \, \text{cm}, uA=45cmu_A=-45 \, \text{cm}, and uB=35cmu_B=-35 \, \text{cm}.

  • Subtracting image positions without considering signs is wrong because image length is the separation between the two image points on the axis. Compute VAVBV_A-V_B carefully using signed values, then take the resulting positive length.

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