A solution of acetone in ethanol shows a positive deviation from Raoult’s law due to miscibility of these two liquids with difference of polarity and length of hydrocarbon chain.

Minimum boiling azeotrope is formed by solution showing positive deviation. e.g. acetone – ethanol.

Molality of solution $$X=$$  molality of solution $$Y$$
                                   $$ = 0.2\,mol/kg$$
We know that, elevation in the boiling point $$\left( {\Delta {T_b}} \right)$$  of a solution is proportional to the molal concentration of the solution i.e.
$$\Delta {T_b} \propto m\,\,{\text{or}}\,\,\Delta {T_b} = {K_b}m$$
where, $$m$$ is the molality of the solution and $${K_b}$$  is molal boiling point constant or ebullioscopic constant.
∴ By elevation in boiling point relation
$$\Delta {T_b} = i{K_b}m\,\,\,{\text{or}}\,\,\,\Delta {T_b} \propto i$$
where, $$i$$ is van't Hoff factor
Since, $$\Delta {T_b}$$  of solution $$X$$ is greater than $$\Delta {T_b}$$  of solution $$Y.$$
( Observed colligative property is greater than normal colligative property ).
∴ $$i$$ of solution $$X$$ > $$i$$ of solution $$Y$$
∴ Solution $$X$$ undergoing dissociation.

$$\Delta {{\text{T}}_b} = {K_b} \times m$$
Elevation in boiling point is a colligative property, which depends upon the no. of particles ( concentration of solution ). Thus greater the number of particles, greater is the elevation in boiling point and hence greater will be its boiling point.
$$N{a_2}S{O_4} \rightleftharpoons 2N{a^ + } + SO_4^{2 - }$$
Since $$N{a_2}S{O_4}$$  has maximum number of particles hence it has maximum boiling point.

$$\eqalign{ & {\text{Molality of non - electrolyte solute}} \cr & = \frac{{\frac{{{\text{Weight of solute in }}\left( g \right)}}{{{\text{Molecular weight of solute }}}}}}{{{\text{Weight of solvent in }}(kg)}} \cr & = \frac{{\frac{1}{{250}}}}{{0.0512}} \cr & = \frac{1}{{250 \times 0.0512}} \cr & = 0.0781\,m \cr & \Delta {T_f} = {k_f} \times {\text{molality of solution}} \cr & \,\,\,\,\,\,\,\,\,\,\, = 5.12 \times 0.0781 \approx 0.4K \cr} $$

In ideal solution there is no change in enthalpy and volume after mixing, i.e.
$$\eqalign{ & \Delta {V_{{\text{mixing}}}} = 0,\,\Delta {H_{{\text{mixing}}}} = 0 \cr & {\text{and}}\,\,\,{T_{{\text{mix}}}} = 0 \cr} $$