Answer:
11.94 grams of carbon dioxide were originally present.
19.94 grams of krypton can you recover.
Explanation:
Mass of carbon dioxide gas = x
Mass of krypton gas = y
x + y = 31.7 g
Moles of carbon dioxide gas = [tex]n_1=\frac{x}{44 g/mol}=[/tex]
Moles of krypton gas = [tex]n_2=\frac{y}{84 g/mol}=[/tex]
Mole fraction of krpton =[tex]\chi '[/tex]
Total pressure of the mixture = P = 0.665 atm
Partial pressure of carbon dioxide gas = p
Partial pressure of krypton gas before removal of carbon dioxide gas = p'
Partial pressure of krypton gas after removal of carbon dioxide gas = p'' = 0.309 atm
p' = p'' = 0.309 atm
0.665 atm = p + 0.309 atm
p = 0.665 atm - 0.306 atm = 0.359 atm
Partial pressure of krypton can also be given by :
[tex]p'=P\times \chi '[/tex]
[tex]0.309 atm=0.665 atm\times \frac{n_2}{n_1+n_2}[/tex]
[tex]0.309 atm=0.665 atm\times \frac{\frac{y}{84}}{\frac{x}{44}+\frac{y}{84}}[/tex]
[tex]0.4645=\frac{\frac{y}{84}}{\frac{x}{44}+\frac{y}{84}}[/tex]..[2]
Solving [1] and [2]:
x = 11.94 g
y = 19.76 g
11.94 grams of carbon dioxide were originally present.
19.94 grams of krypton can you recover.
