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A piece of steel has a weight w in air, ...

A piece of steel has a weight `w` in air, `w_(1)` when completely immersed in water and `w_(2)` when completely immersed in an unknown liquid. The relative density (specific gravity) of liquid is

A

`(w-w_(1))/(w-w_(2))`

B

`(w-w_(2))/(w-w_(1))`

C

`(w_(1)-w_(2))/(w-w_(1))`

D

`(w_(1)-w_(2))/(w-w_(2))`

Text Solution

Verified by Experts

The correct Answer is:
B
Relative density of steel=`("weight in air")/("change in weight in water")`
`=(w)/(w-w_(1))`
Now change in weight in the given liquid = upthrust in this liquid
or `w-w_(2)={(w//g)/((w//w-w_(1))rho_(w))}d_(2)xxrho_(w)xxg`
`therefore d_(2)=(w-w_(2))/(w-w_(1))`= relative density of given liquid.
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