Sea water is found to contain `5.85% NaCl` and `9.50% MgCl_(2)` by weight of solution. Calcualte its normal boiling point assuming `80%` ionisation for `NaCl` and `50%` ionisation of `MgCl_(2)(K_(b)(H_(2)O)=0.51 kg"mol"^(-1)K)`.

Sea water is found to contain 5.85% NaCI and 9.50% MgCI_(2) by weight of solution. Calculate its normal boiling point assuming 80% ionisation for NaCI and 50% ionisation of MgCI[K_(b)(H_(2)O) =0.51 kg mol^(-1)K]

0.1 molal aqueous solution of an electrolyte AB_(3) is 90% ionised. The boiling point of the solution at 1 atm is ( K_(b(H_(2)O)) = 0.52 kg " mol"^(-1) )

An industrial waste water I found to contain 8.2% Na_(3)PO_(4) and 12% MgSO_(4) by mass in solution. If % ionisation of Na_(3)PO_(4) "and"MgSO_(4) Are 50 and 60 respectively then its normal boiliung point is [ K_(b)(H_(2)O) = 0.50 K kg "mol"^(-1) ] :

Calculate elevation in boiling point for 2 molal aqueous solution of glucose. (Given K_b(H_(2)O) = 0.5 kg mol^(-1) )

A water sample contains 9.5% MgCl_(2) and 11.7% NaCl (by weight).Assuming 80% ionisation of each salt boiling point of water will be (K_(b)=0.52)

2.0 molal aqueous solution of an electrolyte X_(2) Y_(3) is 75% ionised. The boiling point of the solution a 1 atm is ( K_(b(H_(2)O)) = 0.52K kg mol^(-1) )

3.0 molal aqueous solution of an electrolyte A_(2)B_(3) is 50% ionised. The boilng point of the solution at 1 atm is: [k_(b) (H_2O) = 0.52 K kg mol^(-1)]

An aqueous solution contains 5% by weight of urea and 10% by weight of glucose. What will be its freezing point ? ( K_(f) for water =1.86^(@)" mol"^(-) kg)

The freezing point of aqueous solution that contains 5% by mass urea. 1.0% by mass KCl and 10% by mass of glucose is: (K_(f) H_(2)O = 1.86 K "molality"^(-1))

Calculate the freezing point of 1 molal NaCl solution assuming NaCl to be 100% dissociated in water. ( K_(f) for water = 1.86^(@)"mol"^(-) ).