Topic: Calculation on changes in the freezing point (Read 2697 times)

aaronhkg · « **on:** March 02, 2011, 08:08:08 PM »

Question:

0.2g of a substance lowers the freezing point of 70g of its aqueous solution by 0.0673oC. Calculate the R.M.M. of the substance given the cryoscopic constant for water is 1.8K mol-1 1000g-1.

My answer:

Molality => -0.0673/-1.80 = 0.0362m

No. of mole => 0.1kg H2O X 0.0362m = 0.00362 mol of ??

Molar mass = 0.2/0.00362 mol = 55.2486g/ mol of ??

what did it do wrong? what's the use of the given figure 70g??

rabolisk · « **Reply #1 on:** March 02, 2011, 10:10:16 PM »

Your aqueous solution weighs 70 grams. This will be necessary in going from molality to moles.

aaronhkg · « **Reply #2 on:** March 03, 2011, 09:46:24 AM »

Thanks for your reply.

did you mean 70g/18 H2O = 3.89 mol? then what should I do?

Borek · « **Reply #3 on:** March 03, 2011, 10:14:52 AM »

Quote

0.1kg H2O

Where did you got 0.1 kg from?

aaronhkg · « **Reply #4 on:** March 03, 2011, 10:22:29 AM »

Oh!!! is it suppose to be 0.07kg X 0.0362m?

Now it make sense

Thx

Topic: Calculation on changes in the freezing point (Read 2697 times)

aaronhkg

Calculation on changes in the freezing point

rabolisk

Re: Calculation on changes in the freezing point

aaronhkg

Re: Calculation on changes in the freezing point

Borek

Re: Calculation on changes in the freezing point

aaronhkg

Re: Calculation on changes in the freezing point

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