Answer : 87.60 g of Urea.
Explanation : We need to use the mole fraction formula here;
[tex] x_{urea} = x_{water} . P^{o} _{water} } [/tex]
So, we have values and substituting them we get, 29.45 = [tex] x_{water}[/tex] (31.8)
Hence, [tex] x_{water}[/tex] = 0.926 (this is the mole fraction of water)
Therefore, mole fraction of urea = 1 - 0.926 = 0.074,
moles of water present = 329 g / 18.0 mol = 18.27 moles,
Now, we have 0.074 moles of urea / 0.926 moles of water = x moles of urea / 18.27 moles of water,
Therefore, x = 1.46 moles of urea.
And now, Mass of urea = moles of urea X molar mass of urea;
= 1.46 X 60.0 = 87.60 g
Hence the mass of urea to be dissolved in 329 g of water will be 87.60 g
