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Question

Consider a Vernier calipers in which each 1 cm on the main scale is divided into 8 equal divisions and a screw gauge with 100 divisions on its circular scale. In the Vernier callipers, 5 divisions of the Vernier scale coincide with 4 divisions on the main scale and in the screw gauge, one complete rotation of the circular scale moves it by two divisions on the linear scale. Then


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Solution

Vernier Calipers:
1 cm is divided into 8 divisions, 1 main scale division is given as 18cm
Given 5 Vernier scale coincides with 4 main scale divisions
5V.S.D=4M.S.D
L.C= 1M.S.D45M.S.D
L.C= 1M.S.D45M.S.D=15M.S.D=140cm

Given pitch of Screw gauge is 2 times L.C. of V.S
p=2×140cm=120cm
No. of divisions on circular scale =100
The least count of screw gauge is =pitchno.ofdivisionsoncircularscale
=120100=0.0005 cm=0.005 mm
Hence, option B is correct.

Given least count of the linear scale of the screw gauge is twice the least count of the Vernier calipers.
One complete rotation of the circular scale moves it by two divisions on the linear scale, so pitch is 2 times linear scale division of screw gauge,

Pitch =2 × linear scale division of screw gauge =4× L.C of V.S =4×140=110

The least count of screw gauge is pitchno.ofdivisionsoncircularscale
No. of divisions on circular scale =100
L.C=110100=0.001 cm=0.01 mm
Option C is correct .
Hence, option B and C is correct.

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