Topic: Vapour pressure, am I on the right track? (Read 4556 times)

ladymonsterface · « **on:** January 31, 2012, 09:37:36 PM »

Calculate the vapour pressure of a 5% by mass benzoic acid [C7H6O2 (aq)] in ethanol solution at 35˚C. The vapour pressure of pure ethanol at this temperature is 13.40 kPa.

so what I did was

first, I pretend that it was for 1 kg and found that in on kg there would be .409 moles of Benzoic acid and 20.6 moles of ethanol (which seemed like alot)

then
Xsolvant=mols of solvant/total moles
Xsolvant=20.6/20.682
Xsolvant=.996

Then
P=Xsolvant*Psolvant
P=.996*13.40
P=13.3

it just doesnt seem right, what did I do wrong?

Borek · « **Reply #1 on:** February 01, 2012, 05:41:32 AM »

How many total moles?

ladymonsterface · « **Reply #2 on:** February 01, 2012, 12:02:13 PM »

Quote from: Borek on February 01, 2012, 05:41:32 AM

How many total moles?

thats a slightly embarrassing mistake on my part ok, so if total mass is 21.009

then its 20.6/21.009
and that comes to .98

Then
P=Xsolvant*Psolvant
P=.98*13.40
P=13.14

so does it look right now?

Borek · « **Reply #3 on:** February 01, 2012, 02:34:56 PM »

Numbers look reasonable - at least they are in the correct ballpark.

ladymonsterface · « **Reply #4 on:** February 01, 2012, 09:10:02 PM »

Quote from: Borek on February 01, 2012, 02:34:56 PM

Numbers look reasonable - at least they are in the correct ballpark.

Well check over them again anyway. Thanks alot

Topic: Vapour pressure, am I on the right track? (Read 4556 times)

ladymonsterface

Vapour pressure, am I on the right track?

Borek

Re: Vapour pressure, am I on the right track?

ladymonsterface

Re: Vapour pressure, am I on the right track?

Borek

Re: Vapour pressure, am I on the right track?

ladymonsterface

Re: Vapour pressure, am I on the right track?

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