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Chemistry 8 Online
OpenStudy (anonymous):

The total pressure of a gas mixture in a particular container is 43.2 atm. The Flask contains 2.87 mol of argon, 7.40 mol of chlorine and 15.2 mol of xenon. Determine the partial pressure of each gas.

OpenStudy (anonymous):

So what do you say we figure out the percent each type of gass is out of the soln, then multiply the pressure by the same percentage to figure out the partial pressure?

OpenStudy (anonymous):

zbay gives sound advice

OpenStudy (mos1635):

P(i)=( n(i)/n(total) )*P(total)

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