The molar quantities of THREE GASES sum to 1.02*mol1.02mol. What pressure would result if the gases were heated to 301*K301K, and confined to a 30*L30L volume?

1 Answer
anor277
Apr 2, 2017

We can use [Dalton's law of partial pressures............](https://socratic.org/questions/how-would-you-define-and-explain-dalton-s-law-of-partial-pressure) and get P_"Total"~=0.8*atmPTotal0.8atm

Explanation:

Dalton's law of partial pressures states that in a gaseous mixture the partial pressure exerted by a component gas is the SAME as the pressure it would exert if it alone occupied the container. The total pressure is the sum of the individual partial pressures.

And thus because of these properties:

P_"Total"=P_A +P_B+P_CPTotal=PA+PB+PC

And if we assume ideality, then P_A=(n_ART)/VPA=nARTV, P_B=(n_BRT)/VPB=nBRTV, and P_C=(n_CRT)/VPC=nCRTV

But (RT)/VRTV is a common factor, so...........

P_"Total"={(RT)/V}(n_A + n_B+n_C)PTotal={RTV}(nA+nB+nC)

=(1.02*mol)xx0.0821*(L*atm)/(K*mol)xx301*Kxx1/(30*L)=(1.02mol)×0.0821LatmKmol×301K×130L

P_"Total"~=0.8*atmPTotal0.8atm

I don't know what you mean by the "modified Ideal Gas law"modified Ideal Gas law.

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