A mixture of 90.0 grams of CH4 and 10.0 grams of argon has a pressure of 250 torr under conditions of constant temperature and volume. The partial pressure of CH4 in torr is:
Molar mass of CH4 = 16.04 g/mol
Molar mass of argon = 39.9g/mol
From the given masses we can calculate number of moles followed by mole fraction of each gas.
Number of moles of CH4 = 90.0/16.04 = 5.61
Number of moles of argon= 10/39.9 = 0.25
Mole fraction of CH4 = 5.61/(5.61+0.25)= 0.95
Hence partial pressure= Mole fraction × Total pressure
= 0.95× 250 torr
= 239 torr
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