Home
Class 11
PHYSICS
The given diagram represents a screw gau...

The given diagram represents a screw gauge. The circular scale is divided into `50` divisions and the linear scale is divided into millimeters. If the screw advances by `1 mm` when the circular scale makes `2` complete revolutions, find the least count of the instrument and the reading of the instrument in the figure.
.

Text Solution

Verified by Experts

The correct Answer is:
A, B, C
Pitch of the screw = `(1 mm)/ 2`
= `0.5 mm`
Least count = `(0.5)/(50)`
= `0.01 mm`
Reading = Linear scale reading
+ (coinciding circular scale `xx` least count)
= `3.0 mm +(32 xx 0.01) = 3.0 + 0.32`
= `3.32 mm`.
Doubtnut Promotions Banner Mobile Dark
|

Topper's Solved these Questions

  • EXPERIMENTS

    DC PANDEY|Exercise Single Correct|33 Videos

  • ELECTROSTATICS

    DC PANDEY|Exercise Integer|17 Videos

  • FLUID MECHANICS

    DC PANDEY|Exercise Medical entranes gallery|49 Videos

Similar Questions

Explore conceptually related problems

Read complete rotation the screw advances by (1)/(2)mm Circular scale has 50 division .

Read the screw gauge shown below in the figure. Given that circular scale has 100 divisions and in one complete rotation the screw advances by 1 mm . .

Knowledge Check

  • The circular scale of a screw gauge has 50 divisions and pitch of 0.5 mm. Find the diameter of sphere. Main scale reading is 2 -

    A
    `1.2`
    B
    `1.25`
    C
    `2.207`
    D
    `2.25`

  • On six complete rotations, the screw gauge moves by 3 mm on the main scale. If there are 50 divisions on the circular scale the least count of the screw gauge is

    A
    0.01 cm
    B
    0.02 mm
    C
    0.001 mm
    D
    0.001 cm

  • Circular scale of a screw gauge moves through 4 divisions of main scale in one rotation. If the number of divisions on the circular scale is 200 and each division of the main scale is 1 mm., the least count of the screw gauge is

    A
    0.01 mm
    B
    0.02 mm
    C
    0.03 mm
    D
    0.04 mm

    • Similar Questions

    Explore conceptually related problems

    Find the thickness of the wire The main scale division is of 1mm In a complete rotation the screw advances by 1mm and the circular scale has 100 devisions

    Find the thickess of the wire The main scale division is of 1mm In a complete rotation the screw advances by 1mm and the circular scale has 100 devisions Zero error of the screwgase is 0.007mm . .

    The circular scale of a screw gauge has 50 divisions and pitch of 0.5 mm. Find the diameter of sphere. Main scale reading is 2.

    In a screw gauge, the main scale has divisions in millimetre and circular scale has 50 divisions. The least count of screw gauge is

    The pitch of a screw gauge is 1mm and its cap is divided into 100 divisions. When this screw gauge is used to measure the diameter of a wire, then main scale reading is 2 mm and 58^(th) division of circular scale coincides with the main scale. There is no zero error in the screw gage. Then the diameter of the wire is

    Home
    Profile