Respuesta :
This is an incomplete question, here is a complete question.
At a certain temperature the vapor pressure of pure heptane is measured to be 170 torr. Suppose a solution is prepared by mixing 86.7 g of heptane and 125 g of acetyl bromide.
Calculate the partial pressure of heptane above this solution. Round your answer to 3 significant digits.
Answer : The partial pressure of heptane is, 78.2 torr
Explanation : Given,
Mass of heptane = 86.7 g
Mass of acetyl bromide = 125 g
Molar mass of heptane = 100 g/mole
Molar mass of acetyl bromide = 122.9 g/mole
First we have to calculate the moles of heptane and acetyl bromide.
[tex]\text{Moles of heptane}=\frac{\text{Mass of heptane}}{\text{Molar mass of heptane}}=\frac{86.7g}{100g/mole}=0.867mole[/tex]
and
[tex]\text{Moles of acetyl bromide}=\frac{\text{Mass of acetyl bromide}}{\text{Molar mass of acetyl bromide}}=\frac{125g}{122.9g/mole}=1.017mole[/tex]
Now we have to calculate the mole fraction of heptane and acetyl bromide.
[tex]\text{Mole fraction of heptane}=\frac{\text{Moles of heptane}}{\text{Moles of heptane}+\text{Moles of acetyl bromide}}=\frac{0.867}{0.867+1.017}=0.460[/tex]
and
[tex]\text{Mole fraction of acetyl bromide}=\frac{\text{Moles of acetyl bromide}}{\text{Moles of heptane}+\text{Moles of acetyl bromide}}=\frac{1.017}{0.867+1.017}=0.539[/tex]
Now we have to partial pressure of heptane.
[tex]p_{heptane}=X_{heptane}\times p^o_{heptane}[/tex]
where,
[tex]p^o_{heptane}[/tex] = partial pressure of heptane
[tex]p_{heptane}[/tex] = total pressure of gas
[tex]X_{heptane}[/tex] = mole fraction of heptane
[tex]p_{heptane}=X_{heptane}\times p^o_{heptane}[/tex]
[tex]p_{heptane}=0.460\times 170torr=78.2torr[/tex]
Therefore, the partial pressure of heptane is, 78.2 torr
