Suppose that 1.28 g of neon gas and 2.49 g of argon gas are confined in a 9.87-L container at 27 C. What would be the pressure in the container?

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Suppose that 1.28 g of neon gas and 2.49 g of argon gas are confined in a 9.87-L container at 27 C. What would be the pressure in the container?

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Answer 1 · 2016-08-29T17:42:55

Approx. $0.3*atm$

Explanation:

We use $"Dalton's Law of Partial Pressures"$ , which states that in a gaseous mixture, the partial pressure of a gaseous component 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 $P_"Ne"$ $=$ $(n_"Ne"RT)/V$ $=$ $((1.28*g)/(20.18*g*mol^-1)xx0.0821*L*atm*K^-1*mol^-1xx300*K)/(9.87*L)$ $=$ $0.158*atm$

And $P_"Ar"$ $=$ $(n_"Ar"RT)/V$ $=$ $((2.49*g)/(39.95*g*mol^-1)xx0.0821*L*atm*K^-1*mol^-1xx300*K)/(9.87*L)$ $=$ $0.156*atm$

$P_"Total"$ $=$ $P_"Ne"+P_"Ar"$ $=$ $??*atm$

Of course, I could have simply worked out the molar quantity of the combined gases, and solved the problem directly. This treatment illustrates $"Dalton's Law"$ .

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Suppose that 1.28 g of neon gas and 2.49 g of argon gas are confined in a 9.87-L container at 27 C. What would be the pressure in the container?

1 Answer

Explanation:

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