Respuesta :
Answer:
Mole fraction of alcohols in liquid phase [tex]x_1=0.2727\& x_2=0.7273[/tex].
Mole fraction of alcohols in vapor phase [tex]y_1=0.1468\& y_2=0.8516[/tex].
Explanation:
The total vapor pressure of the solution = p =38.6 Torr
Partial vapor pressure of the n-propyl alcohol =[tex]p^{o}_1=21.0 Torr[/tex]
Partial vapor pressure of the isopropyl alcohol =[tex]p^{o}_2=45.2 Torr[/tex]
[tex]p=x_1\times p^{o}_1+x_2\times p^{o}_2[/tex] (Raoult's Law)
[tex]p=x_1\times p^{o}_1+(1-x_1)\times p^{o}_2[/tex]
[tex]38.6 Torr=x_1\times 21.0 Torr+(1-x_1)\times 45.2 Torr[/tex]
[tex]x_1=0.2727[/tex]
[tex]x_2=1-0.2727=0.7273[/tex]
[tex]x_1\& x_2[/tex] is mole fraction in liquid phase.
Mole fraction of components in vapor phase [tex]y_1\& y_2[/tex]
[tex]p_1=y_1\times p[/tex] (Dalton's law of partial pressure)
[tex]y_1=\frac{p_1}{38.6 Torr}=\frac{p^{o}_1\times x_1}{38.6 Torr}[/tex]
[tex]y_1=\frac{21.0 Torr\times 0.2727}{38.6 Torr}=0.1468[/tex]
[tex]y_1=\frac{p_2}{38.6 Torr}=\frac{p^{o}_2\times x_2}{38.6 Torr}[/tex]
[tex]y_2=\frac{45.2 Torr\times 0.7273}{38.6 Torr}=0.8516[/tex]
Mole fraction of alcohols in vapor phase [tex]y_1=0.1468\& y_2=0.8516[/tex]
