A cubical block (side l) is in equilibri...

A cubical block (side `l`) is in equilibrium at the interface of two liquids A and B. The spring balance reads W Newton. If the block is weighted in air, the reading of the spring balance will be :

`W+(1)/(2)(rho_(1)+rho_(2))gl^(3)`

`W+(1)/(2)(rho_(2)-rho_(1))gl^(3)`

`W+(rho_(1)+rho_(2))gl^(3)`

`W`

Text Solution

Verified by Experts

The correct Answer is:

`W + F_(B) - mg =0`
`mg = W + F_(B)`
`F_(B)` = Net buoyany force
`= [rho_(1)((l)/(3))(l)^(2)+rho_(2)((l)/(2))l^(2)]g =(rho_(1)+rho_(2))(l^(3))/(2) g`
`mg = W + (1)/(2)(rho_(1)+rho_(2))gl^(3)` = weight in air

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