MCQEasyJEE 2023Vernier Calipers & Screw Gauge

JEE Physics 2023 Question with Solution

In an experiment with vernier calipers of least count 0.1mm0.1 \, \text{mm}, when two jaws are joined together the zero of the vernier scale lies right to the zero of the main scale and **66**th division of vernier scale coincides with the main scale division. While measuring the diameter of a spherical bob, the zero of the vernier scale lies in between 3cm3 \, \text{cm} and 3.3cm3.3 \, \text{cm} marks, and **44**th division of vernier scale coincides with the main scale division. The diameter of the bob is measured as:

  • A

    3.25cm3.25 \, \text{cm}

  • B

    3.22cm3.22 \, \text{cm}

  • C

    3.18cm3.18 \, \text{cm}

  • D

    3.26cm3.26 \, \text{cm}

Answer

Correct answer:D

Step-by-step solution

Standard Method

Given: Least count is 0.1mm0.1 \, \text{mm}. When the jaws are closed, the vernier zero lies to the right of the main scale zero and the **66**th vernier division coincides, so the zero error is positive. While measuring the bob, the vernier zero lies between 3cm3 \, \text{cm} and 3.3cm3.3 \, \text{cm}, and the **44**th vernier division coincides.

Find: The diameter of the spherical bob.

From the given working,

Zero error=6×0.1mm=0.6mm\text{Zero error} = 6 \times 0.1 \, \text{mm} = 0.6 \, \text{mm}

This is a positive zero error.

The observed diameter is

Diameter=Main Scale Reading+Vernier Scale Reading×Least Count\text{Diameter} = \text{Main Scale Reading} + \text{Vernier Scale Reading} \times \text{Least Count} Diameter=3.2cm+4×0.1mm=3.2cm+0.4mm=3.24cm\text{Diameter} = 3.2 \, \text{cm} + 4 \times 0.1 \, \text{mm} = 3.2 \, \text{cm} + 0.4 \, \text{mm} = 3.24 \, \text{cm}

Now subtract the positive zero error:

Actual diameter=3.24cm0.06cm=3.18cm\text{Actual diameter} = 3.24 \, \text{cm} - 0.06 \, \text{cm} = 3.18 \, \text{cm}

Therefore, the diameter of the bob is 3.18cm3.18 \, \text{cm}. The solution working gives 3.18cm3.18 \, \text{cm}, which corresponds to option C, although the provided solution incorrectly labels the correct option as D.

Common mistakes

  • Taking the zero error as negative. Here the vernier zero lies to the right of the main scale zero, so the zero error is positive. Therefore it must be subtracted from the observed reading, not added.

  • Using 3.0cm3.0 \, \text{cm} as the main scale reading instead of 3.2cm3.2 \, \text{cm}. The main scale reading is the mark just to the left of the vernier zero, so the correct reading is 3.2cm3.2 \, \text{cm}.

  • Failing to convert 0.6mm0.6 \, \text{mm} into centimetres before subtraction. Since the diameter is written in centimetres, the zero correction must be converted to 0.06cm0.06 \, \text{cm} before applying it.

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