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Topic: Methane Stoichiometry  (Read 13872 times)

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Offline Vultux

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Methane Stoichiometry
« on: February 12, 2017, 08:22:19 PM »
Methane is a very powerful greenhouse gas. One pound of methane traps 25 times more heat in the atmosphere than a pound of carbon dioxide. Methane is also the main ingredient in natural gas. Because methane can be captured from landfills, it can be burned to produce electricity, heat buildings, or power garbage trucks. What volume of oxygen is necessary to completely react with 8.46 x 1019 molecules of methane gas, CH4 during combustion?



So I started with balancing the equation, which is CH4 + 2O2  :rarrow:  CO2 + 2H2O

I think next I'm supposed to go from 8.46 x 1019 particles of methane gas (CH4) to moles of (CH4) to moles of oxygen to volume of oxygen. What I'm confused about is how I'm supposed to set the equation up and I would appreciate any help in doing so.p
« Last Edit: February 12, 2017, 09:09:41 PM by Vultux »

Offline billnotgatez

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Re: Methane Stoichiometry
« Reply #1 on: February 12, 2017, 08:32:52 PM »
You have to show your attempts or thoughts at solving the question to receive help.
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Offline AWK

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Re: Methane Stoichiometry
« Reply #2 on: February 12, 2017, 08:47:13 PM »
Start from balanced reaction
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Offline AWK

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Re: Methane Stoichiometry
« Reply #3 on: February 12, 2017, 10:40:00 PM »
Now change number molecules to moles and calculate moles of oxygen in relation to that of methane.
Hint - Avogadro number.
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Offline Vultux

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Re: Methane Stoichiometry
« Reply #4 on: February 13, 2017, 11:40:25 AM »
So I divide particles by Avagadros which becomes 1.40*10-4 moles. I'm confused on how I do moles to moles. I know it requires the molar mass of both of them but I'm confused on how to do so.

Offline Borek

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Re: Methane Stoichiometry
« Reply #5 on: February 13, 2017, 12:06:07 PM »
No, you don't need molar masses.

Do you know how to read the reaction equation?
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Offline Vultux

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Re: Methane Stoichiometry
« Reply #6 on: February 13, 2017, 12:18:27 PM »
Not really, my teacher is horrible at teaching so I have to learn everything for Chemistry online by myself. Read it and I'm guessing I have to set a ratio of Oxygen to Methane gas which would be 2/4 then do something?

Offline AWK

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Re: Methane Stoichiometry
« Reply #7 on: February 13, 2017, 12:51:40 PM »
Now use Avogadro Law nad take molar volume at STP.
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Offline Borek

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Re: Methane Stoichiometry
« Reply #8 on: February 13, 2017, 01:35:55 PM »
Not really, my teacher is horrible at teaching so I have to learn everything for Chemistry online by myself. Read it and I'm guessing I have to set a ratio of Oxygen to Methane gas which would be 2/4 then do something?

Use the ratio to find number of moles of oxygen needed to burn the methane. Then follow AWK's advice.
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Offline Vultux

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Re: Methane Stoichiometry
« Reply #9 on: February 13, 2017, 07:44:16 PM »
So it would be (1.40*10-4)/2 which makes 0.00007 moles of Oxygen then what? Do I multiply by Avagadros to get volume?

Offline AWK

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Re: Methane Stoichiometry
« Reply #10 on: February 13, 2017, 11:24:30 PM »
Quote
(1.40*10-4)/2

???

Quote
Do I multiply by Avagadros to get volume?

???
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Offline Borek

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Re: Methane Stoichiometry
« Reply #11 on: February 14, 2017, 03:58:54 AM »
So it would be (1.40*10-4)/2

No. Look at the reaction equation - every mole of methane needs TWO moles of oxygen. If so, 1.40*10-4 moles of methane need how many?

Quote
then what? Do I multiply by Avagadros to get volume?

No. Avogadro's number tells you how many molecules are in the mole, not what volume they occupy.

Do you know how to deal with units? Avogadro's number has units of

[tex]\frac{number~of~molecules}{mole}[/tex]
Number of moles has - not surprisingly - units of just [itex]mole[/itex]. When you multiply the two, you get
[tex]mole\times\frac{number~of~molecules}{mole}[/tex]
Mole cancels out and the result is [itex]number~of~molecules[/itex].

Do you know what is a volume occupied by 1 mole of a gas at STP? Or do you know the ideal gas equation? If not, google these things.
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Offline Vultux

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Re: Methane Stoichiometry
« Reply #12 on: February 14, 2017, 04:46:26 PM »
Would it be 2.8*10-4 moles of Oxygen? and then multiply that 22.4? Sorry if I'm being retarded and dumb, It's just that my teacher taught us conversions the first week during school and it's been a while.

Offline Borek

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Re: Methane Stoichiometry
« Reply #13 on: February 14, 2017, 06:24:06 PM »
Would it be 2.8*10-4 moles of Oxygen? and then multiply that 22.4?

Yes.

Quote
Sorry if I'm being retarded and dumb, It's just that my teacher taught us conversions the first week during school and it's been a while.

I strongly suggest you get back to conversions then, as you will need them all the time.
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Offline Vultux

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Re: Methane Stoichiometry
« Reply #14 on: February 14, 2017, 06:44:53 PM »
So the answer would be 6.3*10-3 liters of Oxygen?

Quote
I strongly suggest you get back to conversions then, as you will need them all the time.

Yeah I know, I'll be learning it after I finish this today.

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