Calculate the molality of ethanol solution in which the mole fraction

1.	Calculate the molality of ethanol solution in which the mole fraction of water is 0.88.
Answer» Mole fraction of water `chi_(H_(2)O) = 0.88` Mole fraction of ethanol, `chi_(C_(2)H_(5)OH) = 1-0.88 = 0.12` `chi_(C_(2)H_(5)OH) = (n_(2))/(n_(1) + n_(2)) " " ...(1)` `n_(2) = "number of moles of ethanol"` `n_(1) = "number of moles of water"` Molality of ethanol means the number of moles of ethanol present in 1000 g of water. `n_(1) = (1000)/(18) = 55.5 "moles"` Substituting the value of `n_(1)` in equation (1) `(n_(2))/(55.5+n_(2)) = 0.12` `n_(2) = 7.57 "moles"` Molality of ethanol `(C_(2)H_(5)OH) = 7.57 m` Alternatively, Mole fraction of water = 0.88 Mole fraction of ethanol = 1-0.88 = 0.12 Therefore, 0.12 moles of ethanol are present in 0.88 moles of water. Mass of water `=0.88 xx 18 = 15.87`g of water Molality = Number of moles of solute (ethanol) present in 1000 g of solvent (water) `=12 xx 1000//15.84 = 7.57m` Molality of ethanol `(C_(2)H_(5)OH) = 7.57m`

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Calculate the molality of ethanol solution in which the mole fraction of water is 0.88.

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