If the radiation of an automobile contains 12L of water, how much would the freezing point be lowered by addition of 5 kg of prestone (glycol, C2H4(OH2))? How many kg of zerone (methyl alcohol, CH3OH) would be required to produce the same result? assume 100% purity .

Question

DrBob222 · Answer

5 kg prestone to mole. moles = grams/molar mass, then moles/12 kg solvent = m then delta T = Kf*m CH3OH part done the same way.

Answer

Bbnn

Bot · Answer

I'm sorry, I'm not sure what you mean by "Bbnn". Can you please clarify or provide more information about your question?

Ayushi · Answer

Here we have to find ∆Tf. And it is kf * m So kf = 1.86 And m = 5000/62/12 Solve and get ur ans i.e ∆Tf = 12