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Question
Find the molality of a water solution which freezes at 263.15 K.
(Given: Kf of water = 1.86 K kg mol−1)
Numerical
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Solution
Given: Freezing point of solution (Tf) = 263.15 K
Freezing point of pure water = `T_f^circ` = 273.15 K
ΔTf = 273 − 263.15 = 9.85 K
Kf = 1.86 K kg mol−1
`Delta T_f = K_f * m`
⇒ `m = (Delta T_f)/(K_f)`
= `9.85/1.86`
= 5.296 mol/kg
∴ The molality of the solution is 5.296 mol/kg.
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