In a screw gauge, there are divisions on the circular scale and the main scale moves by on a complete rotation of the circular scale. The zero of circular scale lies divisions below the line of graduation when two studs are brought in contact with each other. When a wire is placed between the studs, linear scale divisions are clearly visible while the ****th division the circular scale coincide with the reference line. The diameter of the wire is _____ mm.
JEE Physics 2023 Question with Solution
Answer
Correct answer:220
Step-by-step solution
Standard Method
Given: The screw gauge has circular scale divisions and pitch . Zero error is positive because the zero of circular scale lies divisions below the reference line when the studs touch. With the wire inserted, main scale reading is linear divisions and circular scale reading is divisions.
Find: The diameter of the wire.
First find the least count:
The positive zero error is:
Observed reading of the wire is:
Since the zero error is positive, subtract it:
The solution states: The correct answer is . Since the question asks for the value in the form _____ mm,
Therefore, the required numerical answer is .
Reading and zero-correction interpretation
Given: The main scale moves in one complete rotation, so that is the pitch. There are circular divisions.
Find: How the final answer is obtained in the asked format.
A complete rotation corresponds to , so one circular division corresponds to:
When the screw is closed, the zero lies below the graduation line by divisions, so the instrument shows an extra reading. This is a positive zero error of:
With the wire in place, linear scale divisions are visible. Using the working shown in the source solution, this gives main scale reading:
The circular scale contribution is:
Hence observed reading is:
Corrected diameter is:
Now convert to the requested form:
So the final answer is .
Common mistakes
Using the zero error with the wrong sign. Here the zero lies below the reference line when the studs touch, so the zero error is positive and must be subtracted from the observed reading.
Taking least count as instead of . Least count is pitch divided by the number of circular divisions, not the reverse.
Reporting directly as the answer and ignoring the requested format. The question asks for the number multiplying , so .
Practice more Vernier Calipers & Screw Gauge questions
Get unlimited AI-adaptive practice, mastery tracking, and an AI tutor that explains every step — free to start.
Related questions
- In a screw gauge, the zero of the circular scale lies 3 divisions above the horizontal pitch line when their…Easy · JEE 2026
- In a vernier callipers, 50 vernier scale divisions are equal to 48 main scale divisions. If one main scale…Easy · JEE 2026
- When both jaws of a vernier calipers touch each other, zero mark of the vernier scale is right to the zero…Easy · JEE 2026
- For the determination of refractive index of glass slab, a travelling microscope is used whose main scale…Easy · JEE 2025
- Given below are two statements: Statement I: In a vernier callipers, one vernier scale division is always…Easy · JEE 2025
- The least count of a screw gauge is 0.01 mm. If the pitch is increased by 75 and the number of divisions on…Easy · JEE 2025
