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Topic: A stoichiometry question..  (Read 3949 times)

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Offline mdawg467

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A stoichiometry question..
« on: September 12, 2011, 04:23:14 AM »
Hi guys,

Here is the question:
The decomposition of sodium chlorate yields oxygen gas and sodium chloride. If the yield is 85% at STP, how many grams of sodium chlorate are needed to produce 8.00L of oxygen?

My solution:
2NaClO3  :rarrow: 3O2 +2NaCL

(8.00L O2)(1 mol O2/22.4L)(2 mol NaClO3/3 mol O2)(106.4g/1 mol NaClO3)= 25.3 g NaClO3

My concern:
I feel as I completed this problem correctly, however the fact that I did not incorporate the % yield is making me wondering if I missed a step..any input?

Thanks!

Offline sjb

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Re: A stoichiometry question..
« Reply #1 on: September 12, 2011, 05:28:37 AM »
Hi guys,

Here is the question:
The decomposition of sodium chlorate yields oxygen gas and sodium chloride. If the yield is 85% at STP, how many grams of sodium chlorate are needed to produce 8.00L of oxygen?

My solution:
2NaClO3  :rarrow: 3O2 +2NaCL

(8.00L O2)(1 mol O2/22.4L)(2 mol NaClO3/3 mol O2)(106.4g/1 mol NaClO3)= 25.3 g NaClO3

My concern:
I feel as I completed this problem correctly, however the fact that I did not incorporate the % yield is making me wondering if I missed a step..any input?

Thanks!

Almost there. What does it mean that the reaction only has a 85% yield? If it only had a 50% yield, for instance you can imagine that half your reactants are being wasted, so how much more would you need to get a given amount of material out?

Offline mdawg467

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Re: A stoichiometry question..
« Reply #2 on: September 12, 2011, 02:24:36 PM »

Almost there. What does it mean that the reaction only has a 85% yield? If it only had a 50% yield, for instance you can imagine that half your reactants are being wasted, so how much more would you need to get a given amount of material out?

Hi sjb,
Thank you for the response.

Since the reaction yields only 85% of the final product we can say that 15% of the reactants are being "wasted" correct?

So in order to get the the 8.00L of O2 from the sodium chlorate I would need to add an additional 15% to my final answer of 25.3g of NaClO3..so my final answer should be 29.1g of NaClO3.

Is this the correct way of approaching it?
Thanks again.

Online Borek

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Re: A stoichiometry question..
« Reply #3 on: September 12, 2011, 02:29:25 PM »
Since the reaction yields only 85% of the final product we can say that 15% of the reactants are being "wasted" correct?

So in order to get the the 8.00L of O2 from the sodium chlorate I would need to add an additional 15% to my final answer of 25.3g of NaClO3..so my final answer should be 29.1g of NaClO3.

Close, but wrong. Assuming you use 29.1g and 85% will react, that means mass of the reagent use is 0.85*29.1g=24.7g, not 25.3g.

You don't add 15%, you know 25.3g is 85% and you want to know what is 100%. That's not the same thing. But it is not difficult, just think for a moment how to calculate 100% if you know 85%. Hint: you can use ratios for that.
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Offline mdawg467

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Re: A stoichiometry question..
« Reply #4 on: September 12, 2011, 02:47:46 PM »
Close, but wrong. Assuming you use 29.1g and 85% will react, that means mass of the reagent use is 0.85*29.1g=24.7g, not 25.3g.

You don't add 15%, you know 25.3g is 85% and you want to know what is 100%. That's not the same thing. But it is not difficult, just think for a moment how to calculate 100% if you know 85%. Hint: you can use ratios for that.

Hi Borek,
Thanks for the reply.

Okay I think I understand it now!

So if I set it up like a ratio as you suggested I come up with the following: (25.3/X)=(85/100), and once solved I get X=29.8g. This checks out to be correct as 29.8x0.85=25.3g!

So I would need a total mass of 29.8 grams of NaClO3 to have 8.00L of O2 at these conditions.

Thanks for the help everyone..this forum is full of nice and helpful individuals!

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