At `127^(@)C` and `1.00 xx 10^(-2)` atm pressure, the density of a gas is `1.24 xx 10^(-2) kg m^(-3)`. a. Find `v_(rms)` for the gas molecules. b. Find the molecular weight of the gas and identify it.

At `127^(@)C` and `1.00 xx 10^(-2)` atm pressure, the density of a gas

1.	At `127^(@)C` and `1.00 xx 10^(-2)` atm pressure, the density of a gas is `1.24 xx 10^(-2) kg m^(-3)`. a. Find `v_(rms)` for the gas molecules. b. Find the molecular weight of the gas and identify it.
Answer» `p = (1)/(3) rho v_(rms)^(2) implies v_(rms) = sqrt((3 P)/(rho))` `:. V_(rms) = sqrt((3 xx 1.00 xx 10^(-2) xx 1.013 xx 10^(5))/(1.24 xx 10^(-2)))` `= 495 m//s` Again, `v_(rms) = sqrt((3 RT)/(M))` or `M = (3RT)/(v_(rms)^(2))` `= (3 xx 8.3 xx 400)/((495)^(2)) = 40.6 g//mol` This is the molecular weight of argon and so the gas is argon.

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At `127^(@)C` and `1.00 xx 10^(-2)` atm pressure, the density of a gas is `1.24 xx 10^(-2) kg m^(-3)`. a. Find `v_(rms)` for the gas molecules. b. Find the molecular weight of the gas and identify it.

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