December 28, 2024, 12:35:12 AM
Forum Rules: Read This Before Posting


Topic: Stoichiometry  (Read 7432 times)

0 Members and 2 Guests are viewing this topic.

Offline coffee

  • Regular Member
  • ***
  • Posts: 13
  • Mole Snacks: +0/-0
Stoichiometry
« on: August 17, 2006, 06:50:11 PM »
The hydrocarbon burns completely, producing 7.2 grams of water and 7.2 liters of CO2 at standard conditions. What is the empirical formula of the hydrocarbon?
How do I solve this problem? This is what I know so far:
C?H? + O2 --> CO2 = H2O
CO2= 7.2L H2O=7.2g
Do  get CO2 to gC and H2O to gH? If so, how do I convert?  ???

Offline Mitch

  • General Chemist
  • Administrator
  • Sr. Member
  • *
  • Posts: 5298
  • Mole Snacks: +376/-3
  • Gender: Male
  • "I bring you peace." -Mr. Burns
    • Chemistry Blog
Re: Stoichiometry
« Reply #1 on: August 17, 2006, 06:55:54 PM »
First, convert grams water to moles water and liters CO2 to moles CO2
Most Common Suggestions I Make on the Forums.
1. Start by writing a balanced chemical equation.
2. Don't confuse thermodynamic stability with chemical reactivity.
3. Forum Supports LaTex

Offline coffee

  • Regular Member
  • ***
  • Posts: 13
  • Mole Snacks: +0/-0
Re: Stoichiometry
« Reply #2 on: August 17, 2006, 07:00:12 PM »
ok i did that and got .4 mol H2O
I don't know how to do conversions for liters.

7.2 g L x 1000gCO2/1L CO2 x 1 mol CO2/44gCO2?   :-\

Offline Mitch

  • General Chemist
  • Administrator
  • Sr. Member
  • *
  • Posts: 5298
  • Mole Snacks: +376/-3
  • Gender: Male
  • "I bring you peace." -Mr. Burns
    • Chemistry Blog
Re: Stoichiometry
« Reply #3 on: August 17, 2006, 07:05:55 PM »
Use Pv=nRT to calculate moles CO2. They tell you its at standard conditions so you can assume 1atm pressure and 25C temperature and they give you the volume so solve for the amout of moles.
Most Common Suggestions I Make on the Forums.
1. Start by writing a balanced chemical equation.
2. Don't confuse thermodynamic stability with chemical reactivity.
3. Forum Supports LaTex

Offline coffee

  • Regular Member
  • ***
  • Posts: 13
  • Mole Snacks: +0/-0
Re: Stoichiometry
« Reply #4 on: August 17, 2006, 07:40:00 PM »
isnt standard temperature 273K?
anyways i got 0.00317

(1atm)(7.2L) divided by (8.31)(273K)

Offline Will

  • Organic Dude
  • Chemist
  • Full Member
  • *
  • Posts: 400
  • Mole Snacks: +58/-2
  • Gender: Male
Re: Stoichiometry
« Reply #5 on: August 17, 2006, 07:43:45 PM »

Offline coffee

  • Regular Member
  • ***
  • Posts: 13
  • Mole Snacks: +0/-0
Re: Stoichiometry
« Reply #6 on: August 17, 2006, 07:45:15 PM »
ok. i usually use 273K
um anyways did i convert it correctly >,<
and what do i do after i converted both into moles

Offline sdekivit

  • Chemist
  • Full Member
  • *
  • Posts: 403
  • Mole Snacks: +32/-3
  • Gender: Male
  • B.Sc Biomedical Sciences, Utrecht University
Re: Stoichiometry
« Reply #7 on: August 18, 2006, 04:45:25 AM »
to avoid calculations, it may be useful to know the molar volumes at T = 273 K and T = 298 K at p = 105 Pa:

T = 273 K --> Vm = 22,4 L / mol (for an ideal gas)
T = 298 K --> Vm = 24,5 L / mol (for any gaseous compund)

Of course, they can be calculated with the ideal gas law.


Sponsored Links