The vapour pressure of pure watr at 30^(@)C is 31.80 mm of Hg. How man – InterviewSolution

InterviewSolution

1.	The vapour pressure of pure watr at 30^(@)C is 31.80 mm of Hg. How many grams of urea (molecular mass=60) should be dissolved in 1000 g of water to lower the vapour pressure by 0.25 mm of Hg?
Answer» <P> SOLUTION :`P_(A)^(@)=31.80 mm , P_(A)^(@)-P_(S)=31.80-0.25=31.55mm` `W_(A)=1000g, M_(B)=60" g mol"^(-1), M_(A)=18" g mol"^(-1)` According to RAOULT's Law, `(P_(A)^(@)-P_(S))/(P_(S))=x_(B)=(W_(B)xx(18" g mol"^(-1)))/((60" g moll"^(-1))xx(1000g))` `W_(B)=(0.25)/(31.80)xx((60" g mol"^(-1))xx(1000g))/((18" g mol"^(-1)))=26.2g`

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