NVAEasyJEE 2024Vernier Calipers & Screw Gauge

JEE Physics 2024 Question with Solution

If 5050 Vernier divisions are equal to 4949 main scale divisions of a traveling microscope and one smallest reading of the main scale is 0.5mm0.5 \, \text{mm}, the Vernier constant of the traveling microscope is:

Answer

Correct answer:0.01

Step-by-step solution

Standard Method

Given:

  • 5050 Vernier scale divisions are equal to 4949 main scale divisions.
  • 1MSD=0.5mm1 \, \text{MSD} = 0.5 \, \text{mm}

Find: The Vernier constant of the traveling microscope.

The Vernier constant is calculated as

VC=Value of 1 MSDValue of 1 VSD\text{VC} = \text{Value of 1 MSD} - \text{Value of 1 VSD}

Given that 5050 Vernier divisions correspond to 4949 main scale divisions,

50VSD=49MSD50 \, \text{VSD} = 49 \, \text{MSD}

So,

1VSD=4950MSD1 \, \text{VSD} = \frac{49}{50} \, \text{MSD}

Substituting 1MSD=0.5mm1 \, \text{MSD} = 0.5 \, \text{mm},

1VSD=4950×0.5mm=0.49mm1 \, \text{VSD} = \frac{49}{50} \times 0.5 \, \text{mm} = 0.49 \, \text{mm}

Now,

VC=0.5mm0.49mm=0.01mm\text{VC} = 0.5 \, \text{mm} - 0.49 \, \text{mm} = 0.01 \, \text{mm}

Therefore, the Vernier constant of the traveling microscope is 0.01mm0.01 \, \text{mm}.

Step-by-Step Method

Given:

  • The value of 11 main scale division is 0.5mm0.5 \, \text{mm}.
  • 5050 Vernier scale divisions coincide with 4949 main scale divisions.

Find: The least count or Vernier constant.

Concept Used: The Vernier constant or least count is the difference between the value of one main scale division and one Vernier scale division.

LC=1MSD1VSD\text{LC} = 1 \, \text{MSD} - 1 \, \text{VSD}

First find the value of 1VSD1 \, \text{VSD} from

50VSD=49MSD50 \, \text{VSD} = 49 \, \text{MSD}

Dividing by 5050,

1VSD=4950MSD1 \, \text{VSD} = \frac{49}{50} \, \text{MSD}

Now substitute 1MSD=0.5mm1 \, \text{MSD} = 0.5 \, \text{mm},

1VSD=4950×0.5mm1 \, \text{VSD} = \frac{49}{50} \times 0.5 \, \text{mm} 1VSD=0.49mm1 \, \text{VSD} = 0.49 \, \text{mm}

Hence,

LC=0.5mm0.49mm\text{LC} = 0.5 \, \text{mm} - 0.49 \, \text{mm} LC=0.01mm\text{LC} = 0.01 \, \text{mm}

Therefore, the correct numerical answer is 0.010.01.

Common mistakes

  • Using 5049\frac{50}{49} instead of 4950\frac{49}{50} for 1VSD1 \, \text{VSD}. This is wrong because 5050 VSD equals 4949 MSD, so one VSD must be slightly smaller than one MSD. Write

    1VSD=4950MSD1 \, \text{VSD} = \frac{49}{50} \, \text{MSD}

    not the reverse.

  • Taking the Vernier constant as the value of 1VSD1 \, \text{VSD} itself. This is wrong because the Vernier constant is the difference between 1MSD1 \, \text{MSD} and 1VSD1 \, \text{VSD}. After finding 1VSD=0.49mm1 \, \text{VSD} = 0.49 \, \text{mm}, subtract it from 0.5mm0.5 \, \text{mm}.

  • Missing the unit conversion logic and writing the answer as 0.010.01 without recognizing it is in millimetres. The numerical answer field should contain only the number, but during working the quantity must be treated as 0.01mm0.01 \, \text{mm}.

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