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A density bottle weighs 120 g and 100 g ...

A density bottle weighs 120 g and 100 g when filled completely with oil ad water, respectively. If the weight of a empty density bottle is 40g, then arrange the following steps in sequence meant to solve the problem to get the density of oil
(A). The density of the oil
`D=("Mass of the oil")/("Weight of the water")=("Mass of the oil")/("Mass of the water")`
`=("Weighht of oil")/("Weight of the water")=(W_(3)-W_(1))/(W_(2)-W_(1))`
(B). Let the weight of the bottle +oil=`W_(3)=120g`
and the weight of the bottle+water =`W_(2)`
100g, where bottle is completely filled with liquid, i.e., oil or water.
(C). Let the weight of the empty bottle`=W_(1)=40g`
(D). The the weight of the oil ad water would be equal to `(W_(3)-W_(1)) and (W_(2)-W_(1))`, respectively.

A

CBDA

B

ABCD

C

BADC

D

DCBA

Text Solution

Verified by Experts

The correct Answer is:
A
Consider the weight of the empty density bottle as `T_(t)=40g`. Let thhe weight o the bottle + oil be `W_(3)=120g` g and weight of the bottle+water as `W_(2)=100g`. Here bottle is completely filled with given liquids, i.e., either oil or water. From above, the weight of the oil ad water would be equal to `(W_(3)-W_(1))` and `(W_(2)-W_(1))`, respectively. the density of the oil=`("mass of oil "(M_(0)))/("volume of oil"(V_(0)))=("mass of oil")/("volume of water")`
`=("weight of the oil")/("mass of the water")=("Weight of the oil")/("Weight of the water")`
`impliesD=(W_(3)-W_(1))/(W_(2)-W_(1))`
(A) (Here density of water in CGS system is 1 g `cm^(-3)`)
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