Question

The weight of piece of gold, alloyed with silver, is $0.02kgf$ in air and $0.0187kgf$ in water. If relative densities of gold and silver are respectively $19.3and10.5,$ how much gold is there in the piece?

Answer 1

Step 1: Given data,
The weight of the alloy in the air = $0.02kgf$
The weight of the alloy in the water = $0.0187kgf$
We know that the density of water = $1000kg/m^3$
The relative density of gold = $19.3$
So, the density of gold will be = $19300kg/m^3$
The relative density of silver = $10.5$
So, the density of silver will be = $10500kg/m^3$

Step 2: Finding the volume of the alloy,
$$\begin{gathered} weightofwaterdisplaced=weightofthealloyinair-weightofalloyinwater=0.02kgf-0.0187kgf=0.0013kgf \\ Also,densityofwater=\frac{massofwaterdisplaced}{volumeofwaterdisplaced} \\ So,volumeofwaterdisplaced=\frac{massofwaterdisplaced}{densityofwater}=\frac{0.0013kg}{1000kg/m^3}=1.3\times {10}^{-6}{m}^3 \end{gathered}$$

Hence, the volume of the alloy is equal to the volume of water displaced is $\mathbf{1}\mathbf{.}\mathbf{3}\mathbf{\times }{\mathbf{10}}^{\mathbf{-}\mathbf{6}\mathbf{}}{\mathit{m}}^{\mathbf{3}}$.

Step 3: Finding the amount of gold in the alloy,
Let the mass of gold be = $mkg$
So, the mass of silver will be = $\left(0.02-m\right)kg$
$$\begin{gathered} Densityofgold=\frac{massofgold}{volumeofgold} \\ So,volumeofgold=\frac{massofgold}{densityofgold}=\frac{mkg}{19300kg/m^3} \\ Densityofsilver=\frac{massofsilver}{volumeofsilver} \\ So,volumeofsilver=\frac{massofsilver}{densityofsilver}=\frac{\left(0.02-m\right)kg}{10500kg/m^3} \\ Volumeofalloy=volumeofgold+volumeofsilver \\ 1.3\times {10}^{-6}=\frac{mkg}{19300kg/m^3}+\frac{\left(0.02-m\right)kg}{10500kg/m^3} \\ So,m=\left(1.3\times {10}^{-6}-\frac{0.02}{10500}\right)\times \left(\frac{19300\times 10500}{10500-19300}\right)=0.0139kg \end{gathered}$$

Hence, the amount of gold in the alloy is $\mathbf{0}\mathbf{.}\mathbf{0139}\mathbf{}\mathit{k}\mathit{g}$.