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Question
A solution of urea in water has a boiling point of 100.18°C. Calculate the freezing point of the solution. (Kf for water is 1.86 K kg mol−1 and Kb for water is 0.512 K kg mol−1).
Numerical
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Solution
Given: Boiling point of solution = 100.18°C
Boiling point of pure water = 100.00°C
ΔTb = 100.18 − 100.00 = 0.18°C
Kb = 0.512 K kg mol−1
Kf = 1.86 K kg mol−1
ΔTb = Kb m
m = `(Delta T_b)/K_b`
= `0.18/0.512`
= 0.3516 mol/kg
ΔTf = Kf m
= 1.86 × 0.3516
= 0.654°C
Tf = 0°C − ΔTf
= 0 − 0.654
= − 0.654°C
∴ Freezing point of the solution is − 0.654°C.
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