two full turns of the circular scale of a screw gauge cover a distance of 1mm on its main Scale. the total number of the division in the circular scale is 50 . further it is found that the screw gauge has a zero error of-0.03 mm. while measuring the diameter of a thin wire a student notes the main scale reading of 3 mm and the number of circular scale divisions in line with the main scale as 35. then the diameter of the wire..
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Two full turns of the circular scale of a screw gauge cover a distance of 1 mm on its main scale. The total number of divisions on the circular scale is 50. Further, it is found that the screw gauge has a zero error of – 0.03 mm. While measuring the diameter of a thin wire, a student notes the main scale reading of 3 mm and the number of circular scale divisions in line with the main scale as 35. The diameter of the wire is
Option 1) 3.38 mm Option 2) 3.32 mm Option 3) 3.73 mm Option 4) 3.67 mm.
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P prateek
Answered 1 year, 4 months ago
As we learnt in
To measure the diameter of small spherical cylindrical body using Vernier Callipers -
Vernier Constant
= 1 Main scale division - 1 V.S. Division
V.C= 1 M.S.D - 1 V.S.D
M.S.D= Main Scale Reading
V.S.D= Vernier Scale Reading
- wherein
Total observed reading = N+n \times V.C
N= Nth division
Observations:
1. Vernier constant (least count) of the Vernier Callipers:
1 M.S.D. = 1 mm
10 vernier scale divisions = 9 main scale divisions
i.e. 10 V.S.D. = 9 M.S.D.
\therefore 1 V.S.D. =\frac{9}{10} M.S.D.
Vernier Constant (L.C.) = 1 M.S.D. - 1 V.S.D. = 1 M.S.D. -\frac{9}{10} M.S.D.
=\left(1-\frac{9}{10} \right )M.S.D.=\frac{1}{10}\times1M.S.D.
=\frac{1}{10}\times1mm=0.1mm=0.01cm
2. Zero error: (i) ........ cm (ii) ............cm (iii) ..........cm
Mean Zero Error (e) = ............ cm
Mean Zero Correction (c) = - (Mean Zero Error)
= .......... cm
Diameter = M.S.R + C.S.R x LC + Z.E
3+35\times ( \frac{0.5}{50})+0.03 =3.38mm
thnx bahia for giving my answers
and you draw very beautiful
good artist like me
Step-by-step explanation:
(a) : Least count of the screw gauge =
- => (0.5mm)/50 = 0.01mm
- Main scale reading = 3mm.
- Vernier scale reading = 35
Therefore, Observed reading = 3 + 0.35 = 3.35
- zero error = –0.03
Therefore, actual diameter of the wire = 3.35 – (–0.03) = 3.38mm.