Answer:
the boiling point of solution at 3 decimal point is 100.329०C Ans.
Step-by-step explanation:
given data -
molality of Nacl = 0.321 m
molal boiling point elevation constant (Kb) =0.512०C/m
# formula of change of boiling point of sample =
∆ Tb =i × Kb × m
Kb = molal boiling point of elevation constant
m = molality
i = vont's hoff factor.
Nacl is strong electrolyte and its 100% dissociate so the value of i for Nacl is 2
put value in the formula
∆ Tb = 2 × 0.512 ०C/m × 0.321m
= 0.3287
= 0.329०C
∆Tb = T'b - Tb
T'b = boiling point of solution
Tb= boiling point of solvent( water)
0.329०C = T'b - 100०c ( boiling point of water = 100०C)
T'b = 0.329०C + 100०C
= 100.329०C
hope this helps