45 g of ethylene glycol `(C_(2)H_(6)O_(2))` is mixed with 650 g of water. The freezing point depression (in K) will be `(K_(f)"for water "=1.86 "K kg mol"^(-1))`.

(i) Prove that depression in freezing point is a colligative property. (ii) 45 g of ethylene glycol (C_(2)H_(6)O_(2)) is mixed with 600g of water . Calculate the freezing point depression. ( K_(f) for water = 1.86 k kg mol^(-1) )

45 g of ethylene glycol (C_(2) H_(6)O_(2)) is mixed with 600 g of water. The freezing point of the solution is (K_(f) for water is 1.86 K kg mol^(-1) )

45 g of ethylene glycol C_(2)H_(6)O_(2) is mixed with 600 g of water. Calculate (a) the freezing point depression and (b) the freezing point of solution. Given K_(f)=1.86 K kg mol^(-1) .

Ethylene glycol is used as an antifreeze in a cold climate. Mass of ethylene glycol which should be added to 4 kg of water to prevent it from freezing at -6^(@)"C" will be (K_(f)" for water=1.86 K kg mol"^(-1))," and molar mass of ethylene glycol=62g"//"mol"^(-1)) ?

Ethylene glycol is used as an antifreeze in a cold cliamate Mass of ethylene glycol which should be added to 4 kg for water to prevent it from freezing at -6^(@)C will be ( K_(f) for water = 1.86 K kg mol^(-1) and molar mass of ethylene glycol = 62 g mol^(-1) )

Ethylene glycol is used as an antifreeze in a cold climate. Mass of ethylene glycol which should be added to 4 kg of water to prevent it from freezing at -6^(@)C will be (K_(f) for water = 1.86 Kkg mol^(-1) , and molar mass of ethylene glycol =62 g mol^(-1))

Calculate the amount of KCl which must be added to 1kg of water so that the freezing point is depressed by 2K . ( K_(f) for water =1.86K kg "mol"^(-1) ).