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why would it not be useful to just use pure ethanil or pure ethylene glycol as aN ANTIFREEZE SINCE THEIR NORMAL FREEZING POINTS are -114.1 degrees celsius and -12 degrees celsius respectively

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why would it not be useful to just use pure ethanil or pure ethylene glycol as aN ANTIFREEZE SINCE THEIR NORMAL FREEZING POINTS

Top answer: Using pure ethanol or pure ethylene glycol as an antifreeze may not be as effective as using a Read more.
why would it not be useful to just use pure ethanil or pure ethylene glycol as aN ANTIFREEZE SINCE THEIR NORMAL FREEZING POINTS

Top answer: Ethanol's boiling point is too low for use in automobile engines. Ethylene glycol doesn't have the Read more.
Calculate the vapor pressure of water over each of the following ethylene glycol C2H6O2 solutions at 80 degree C (vp=pure

Top answer: This is an exercise in Raoult's Law. If you have not heard of it, review: (Broken Link Removed) You Read more.
Why would it not be useful to just use pure ethanol or pure ethylene glycol as an antifreeze since their normal freezing points

Top answer: Using pure ethanol or pure ethylene glycol as an antifreeze may not be as effective as using a Read more.
A 13.03 g sample contains only ethylene glycol (C2H6O2) and propylene glycol (C3H8O2). When the sample is added to 100.0g of

Top answer: delta T = Kf*m Solve for m m = moles/kg solvent Solve for moles. moles = grams/molar mass Solve for Read more.
A chemist has two ethylene glycol and water solutions: one that contains 11.98% ethylene glycol and another with 7.30% ethylene

Top answer: 7.5x102 = 765 let the amount of 11.98% mixture be x let the amount of 7.3% mixture be 765-x .1198x + Read more.
What is the freezing point of a solution made by dissolving 450 g of ethylene glycol (C2H6O2) in 550 g of water? The freezing

Top answer: moles ethylene glycol = grams/molar mass. Solve for moles. m = moles solute/kg solvent Solve for m Read more.
The cooling system in an automobile holds 10.0 L of ethylene glycol antifreeze. How much energyis absorbed when the temperature

Top answer: heatabsorbed=mass*c*deltaTemp heatabsorbed=10L*1.11g/L*2.42J/gC*80C Read more.
the vapour pressure of pure water at 110 degrees is 142.7kpa. a solution of ethylene glycol and water has a vapour pressure of

Top answer: 0.450 Read more.
A 26.5 g sample of ethylene glycol, a car radiator coolant, loses 675 J of heat. What was the initial temperature of ethylene

Top answer: q = mass e.g. x specific heat e.g. x (Tfinal-Tinitial). Since the coolant LOST (released) 67 J, be Read more.