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10.12.2019 •
Chemistry
Asolution contains 50.0g of heptane (c7h16)and 50.0g of octane (c8h18) at 25 degrees c.the vapor pressures of pure heptane and pure octane at 25 degrees care 45.8 torr and 10.9 torr. assuming ideal behavior, calculateeach of the following: ) the vapor pressure of each of the solution components in themixtureb) the total pressure above the solutionc) the composition of the vapor in mass percentd) why is the composition of the vapor different from thecomposition of the solution?
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Ответ:
a)Pheptane = 24.3 torr
Poctane = 5.12 torr
b)Ptotal vapor = 29.42 torr
c) 81 % heptane
19 % octane
d) See explanation below
Explanation:
The partial pressure is given by Raoult´s law as:
Pa = Xa Pºa where Pa = partial pressure of component A
Xa = mole fraction of A
Pºa = vapor pressure of pure A
For a binary solution what we have to do is compute the partial vapor pressure of each component and then add them together to get total vapor pressure.
In order to calculate the composition of the vapor in part b), we will first calculate the mole fraction of each component in the vapor which is given by the relationship:
Xa = Pa/Pt where Xa = mol fraction of in the vapor
Pa = partial pressure of A as calculated above
Pt = total vapor pressure
Once we have mole fractions we can calculate the masses of the components for part c)
a)
MW heptane = 100.21 g/mol
MW octane = 114.23 g/mol
mol heptane = 50.0 g / 100.21 g/mol = 0.50 mol
mol octane = 50.0 g/ 114.23 g/mol = 0.44 mol
mol total = 0.94 ⇒ Xa= 0.50/0.94 = 0.53 and
Xb= 0.44/0.94 = 0.47
Pheptane = 0.53 x 45.8 torr = 24.3 torr
Poctane = 0.47 x 10.9 torr = 5.12 torr
b) Ptotal = 24.3 torr +5.12 torr = 29.42 torr
c) We will call Y the mole fraction in the vapor to differentiate it from the mole fraction in solution
Y heptane (in the vapor) = 24.3 torr/ 29.42 torr = 0.83
Y octane (in the vapor) = 5.12 torr/ 29.42 torr = 0.17
d) To solve this part we will assume that since the molecular weights are similar then having a mole fraction for heptane of 0.82, we could say that for every mole of mixture we have 0.82 mol heptane and 0.17 mol octane and then we can calculate the masses:
0.82 mol x 100.21 g/mol = 82.2 g
0.17 mol x 114.23 g/mol = 19.4 g
total mass = 101.6
% heptane = 82.2 g/101.6g x 100 = 81 %
% octane = 19 %
There is another way to do this more exactly by calculating the average molecular weight of the mixture:
average MW = 0.83 (100.21 g/mol) + 0.17 ( 114.23 g/mol ) = 102. 6 g/mol
and then having a mol fraction of 0.83 means in 1 mol of mixture we have 0.83 mol heptane and 0.17 mol octane then the masses are:
mass heptane = 0.83 x 100.21 g/mol = 83.2 g
mass octane = 0.17 x 114.23 g/mol = 19.4 g
mass of mixture = 1 mol x MW mixture = 1 mol x 102.6 g/mol 102.6 g
% heptane = (83.2 g/ 102.6 g ) x 100 g = 81 %
% octane = 100 - 81 = 19 %
d)The composition of the vapor is different from the composition of the solution because the vapor is going to be richer in the more volatile compound in the solution which in this case is heptane ( 45.8 vs 10.9 torr).
Ответ:
Hey there!
NaHCO₃
Notice that there is no subscript under Na.
That means there is one atom of Na for each molecule of NaHCO₃.
Hope this helps!