Question

A solid body weighs $2.10N$ in air. Its relative density is $8.4$. How much will the body weigh if placed in:

1. Water
2. A liquid of relative density 1.2

Answer 1

Step 1: Given data,
Weight of body in air = $2.10N$ (mass will be $0.21kg$ taking acceleration due to gravity as $10m/s^2$)
Relative density of the body = $8.4$
We know that the density of water at $4C$= $1000kg/m^3$

Step 2: Finding the weight of the body in water,
$$\begin{gathered} Relativedensity=\frac{weightofthebodyinair}{weightofthebodyinair-weightofthebodyinwater} \\ So,weightofthebodyinwater=weightofthebodyinair-\frac{weightofthebodyinair}{relativedensity} \\ =2.10N-\frac{2.10N}{8.4}=1.85N \end{gathered}$$
Hence, the weight of the body in water is $1.85N$

Step 3: Finding the density of liquid with RD 1.2,
$$\begin{gathered} relativedensityoftheliquid=\frac{densityofliquid}{densityofwater} \\ So,densityofliquid=relativedensity\times densityofwater=1.2\times 1000kg/m^3=1200kg/m^3 \end{gathered}$$

Step 4: Finding the density of the body,
$$\begin{gathered} relativedensityofthebody=\frac{densityofthebody}{densityofwater} \\ So,densityofthebody=densityofthebody\times densityofwater=8.4\times 1000kg/m^3=8400kg/m^3 \end{gathered}$$

Step 5: Finding the weight of the body in a liquid with RD 1.2,
$$\begin{gathered} relativedensityofthebody=\frac{densityofthebody}{densityofliquid}=\frac{8400kg/m^3}{1200kg/m^3}=7 \\ Alsorelativedensityofthebody=\frac{weightofthebodyinair}{weightofthebodyinair-weightofthebodyinliquid} \\ So,weightofthebodyinliquid=weightofthebodyinair-\frac{weightofthebodyinair}{relativedensity}=2.10N-\frac{2.10N}{7}=1.8N \end{gathered}$$

Hence, the weight of the body in the liquid is $1.8N$.