To determine the molar mass of the unknown gas, we use Graham's Law of Effusion where it relates the effusion rates of two gases with their molar masses. It is expressed as r1/r2 = √M2/M1. We calculate as follows:
Let 1 = argon gas 2 = unknown gas
r2 = 0.91r1r1/r2 = 1/0.91
1/0.91 = √M2/M1 = √M2/40M2 = 48.30 g/mol
T, because all gas molecules move freely and i guess depending on the size of the space that fact could change meaning air pressure could effect how they move but all of it would move with the sane force. It’s True I believe
More details please what to select